Global Non-Invasive Prenatal Testing (NIPT) Market Size, Trend & Opportunity Analysis Report, by Gestation Period (0–12 Weeks, 13–24 Weeks, 25–36 Weeks), Pregnancy Risk (High & Average Risk, Low Risk), Method (Ultrasound Detection, Biochemical Screening T
Description
Market Definition and Introduction
The global non-invasive prenatal testing (NIPT) market was valued at USD 7.22 billion in 2024 and is anticipated to reach USD 43.77 billion by 2035, expanding at a CAGR of 17.80% during the forecast period (2025–2035). NIPT has gradually moved from being an optional luxury to a clinical choice for early detection of genetic abnormalities in modern prenatal healthcare, with growing trends toward personalised medicine. Expectations about advanced screening tests that maximise the accuracy, lower the risk, and enhance the comfort of both expectant parents and clinicians are being built. Non-invasive techniques analyse fetal DNA through a blood draw of maternal blood and avoid invasive procedures.
Increasing number of cases of chromosomal disorders like Down syndrome, Edwards syndrome, and Patau syndrome have made NIPT an indispensable choice for diagnosis. The NIPT market is in acute demand with changes in demographics, including delayed pregnancy and an increase in awareness toward prenatal health. Moreover, technological advances in the sequencing platform—here, especially the next-generation sequencing (NGS)—have rapidly improved the sensitivity and specificity of the tests, bringing these clinically useful tests within reach of economic viability across markets.
Industrial stakeholders are revisiting operational models through investments in automating processes to improve workflow and to accurately interpret data through bioinformatics platforms and cloud-based reporting tools. Meanwhile, laboratories and chain diagnostics are now broadening their offerings beyond aneuploidy to include testing for sex chromosome abnormalities and microdeletions, and even a whole-genome NIPT, increasing the acceptability of tests in both public and private sectors of healthcare. This shift in the clinical perspective towards safe, scalable, and rapid genetic testing options is paving the way for durable evolution in the market over the next decade.
Recent Developments in the Industry
In January 2024, Illumina, Inc. unveiled its plans to integrate machine learning capabilities into its existing NIPT pipeline to improve diagnostic outcomes. This initiative aims to expedite risk assessment in high-risk pregnancies and improve interpretation accuracy in low-quality samples.
In February 2024, Natera, Inc. upgraded its flagship Panorama test to include screening for rare single-gene disorders alongside common trisomies. The expansion marks a strategic shift toward making NIPT a more comprehensive fetal health evaluation tool.
In April 2024, F. Hoffmann-La Roche AG partnered with PacBio to explore long-read sequencing technology for non-invasive prenatal testing, targeting improved detection of structural variants and sub-chromosomal abnormalities.
Market Dynamics
Rapidly changing demand for early, accurate and safe prenatal screening.
The worldwide trend of moving more toward diagnostics in the earlier stages of pregnancy has also attracted the use of non-invasive prenatal testing. Unlike traditional procedures that have a risk of miscarriage, NIPT offers a safer, highly accurate method for detecting chromosomal abnormalities even as early as the 10th week of gestation. Rising maternal age, coupled with increased awareness of prenatal care, has compelled more expectant parents to use non-invasive options. Continuous improvement in sensitivity and specificity rates has also made healthcare recommend NIPT as the first-line screening tool.
Technological Innovations-Catalyst For Accelerated Market Growth
Rapid advances in sequencing platforms, especially NGS and PCR, have contributed significantly to the reliability of NIPT results. Progressive analytical algorithms, AI-based data interpretations, and bioinformatics integration have resulted in shorter turnaround times while ensuring sharp risk stratification. Microarray and cfDNA quantification technologies have brought test coverage expansions to detecting both microdeletions and rare trisomies. Hence, NIPT is gaining planetary acceptance as a mainstream diagnostic service embraced by both private and public healthcare systems.
Regulatory and Ethical Constraints that Delay Global Expansion
Even though technological innovation burgeons, several countries have strict regulations regarding the approval of such products and international testing. Most importantly, ethical dilemmas regarding whether it should be possible to find out the sex of the fetus and the privacy surrounding genetic information restrain the widespread acceptance of the testing. Furthermore, unavailability and unaffordability of the tests create disparities in health access across income regions and, hence, do not allow patients to have access to these new technologies. Therefore, governments and regulatory bodies are working toward finding a balance between innovation and ethical governance through well-defined guidelines for prenatal testing.
Increased Penetration in Emerging Markets-Big Opportunities
Asia-Pacific and Latin America are ready to enjoy exponential growth due to the strengthening healthcare infrastructure, increasing birth rates, and public health initiatives. Increasing ties of partnerships between diagnostic companies and local healthcare providers also tend to broaden awareness. On the other hand, as sequencing costs decrease, more families will be able to afford accurate prenatal care without resorting to invasive interventions.
Trend Towards Comprehensive Genomic Profiling and Personalised Medicine
The distinct and growing inclination of NIPT toward more genomic testing platforms heralds the new age of personalised obstetric care. Multi-analyte tests that can identify monogenic diseases, microdeletions, and foetal RhD status are reengineering the prenatal diagnostic frameworks. Continued research and development in cfRNA and epigenetic biomarkers are likely to push the frontiers of non-invasive foetal health monitoring beyond chromosomal assessments.
Attractive Opportunities in the Market
Growing demand for early, risk-free detection of fetal abnormalities via non-invasive approaches.
Rising maternal age contributes to widespread adoption of routine NIPT screenings.
NGS-based platforms redefine test accuracy and broaden the clinical utility of NIPT.
Home-based sampling and digital reporting increase prenatal test accessibility.
Emerging markets offer untapped potential due to rising healthcare investment.
Expansion into microdeletions, single-gene disorders, and whole-genome screening.
Improved reimbursement structures and policy endorsements accelerate adoption.
Public-private partnerships support clinical trials and real-world data collection.
Report Segmentation
By Gestation Period: 0–12 Weeks, 13–24 Weeks, 25–36 Weeks
By Pregnancy Risk: High & Average Risk, Low Risk
By Method: Ultrasound Detection, Biochemical Screening Tests, Cell-Free DNA in Maternal Plasma Tests
By Technology: NGS, Array Technology, PCR, Others
By Product: Consumables & Reagents, Instruments
By Application: Trisomy, Microdeletion Syndrome, Other Applications
By End Use: Hospitals & Clinics, Diagnostic Laboratories
By Region: North America (U.S., Canada, Mexico), Europe (UK, Germany, France, Spain, Italy, Spain, Rest of Europe), Asia-Pacific (China, India, Japan, Australia, South Korea, Rest of Asia-Pacific), LAMEA (Brazil, Argentina, UAE, Saudi Arabia (KSA), Africa Rest of Latin America)
Key Market Players: Illumina, Inc., Natera, Inc., F. Hoffmann-La Roche AG, BGI Genomics Co., Ltd., Laboratory Corporation of America Holdings (LabCorp), Quest Diagnostics Incorporated, Agilent Technologies, Inc., Eurofins Scientific, Yourgene Health, Thermo Fisher Scientific Inc.
Report Aspects
Base Year: 2024
Historic Years: 2022, 2023, 2024
Forecast Period: 2025-2035
Report Pages: 293
Dominating Segments
NGS Technology is the Best in All Aspects in the Market- Accuracy and Versatile Diagnosis
Next-generation sequencing (NGS) is unsurpassedly the dominant force in the market for non-invasive prenatal testing (NIPT) on account of its unparalleled accuracy, scalability, and analytical depth. By having the capacity to decode substantial genomic datasets in record time, NGS-based platforms allow clinicians to identify chromosomal abnormalities, microdeletions, and even complex rearrangements with minimal margins of error. With the integration of AI-driven variant interpretation systems by global manufacturers, it adds that NGS assays are turning into must-haves toward the design of prenatal screening, whether clinical or advanced research. The per-genome cost continuously declines, further promoting access to mid-income economies and leading to sustained market dominance.
Commercialisation through DNA Test Seems Leading in Screening Approaches: Acceptance for Clinical Application, Continuous Growth
Cell-free DNA, that is, cfDNA testing in NIPT methodologies, offers non-invasive, high-sensitivity screening for chromosomal abnormalities from maternal plasma. It has from the beginning to the end revolutionized obstetric diagnostics. In fact, fetal DNA fragments can be tested without the risk of fetal loss or early pregnancy failure. This method has increased confidence in obstetric practitioners, going beyond just identifying chromosomal abnormalities, as there have been ongoing clinical validation studies and increased insurance coverage across developed areas that have made cfDNA tests more popular. More research is still ongoing into the incorporation of cfRNA, anticipated to include epigenetic and metabolic indices into clinical practice for assessing the health of the fetus.
Hospitals and Clinics remain the most prominent end-users in the NIPT market.
Hospitals and Clinics remain the most prominent end-users in the NIPT market as they are the most capable in providing integrated counselling, genetic interpretation, and management of results after tests. Since they follow a multidisciplinary prenatal care model, hospitals collectively work with obstetricians, genetic counsellors, and laboratory specialists. In addition, growing public healthcare reimbursement for prenatal screening in countries like the U.S., UK, and Germany has made them the home of NIPT service delivery.
Key Takeaways
Market Booms with Maternal Age – Later pregnancies increase risk and drive routine NIPT screening.
NGS Reigns Supreme – Advanced sequencing drives accuracy and enables new disorder detection.
Consumables Surge – High sample volume boosts recurring demand for reagents and kits.
Remote Testing Expands Reach – Home collection and digital counselling redefine accessibility.
Policy Push – Government-backed programs endorse test inclusion in public health frameworks.
Wide Disorder Spectrum – Expanded test menus now cover rare deletions and gene-level changes.
Automation and AI – Lab workflow enhancements accelerate speed and reliability of results.
Global Adoption – Developing nations emerge as major growth hubs for prenatal testing.
Hospital-Lab Collaborations – Integrated prenatal care models fuel demand for NIPT services.
Insurance Inclusion – Coverage by private and public insurers boosts affordability and uptake.
Regional Insights
North America has been the undisputed leader in the market due to advanced diagnostics and a strong reimbursement ecosystem.
North America, particularly the USA, has mostly been taking the cake in terms of sheer size within NIPT globally because what does one understand but have extremely high levels of awareness, a very technologically advanced diagnostics infrastructure, and a very extensive healthcare reimbursement coverage? Besides, strategic alliances among the payers, hospitals, and test developers have benefited been benefitted in terms of the region in which NIPT adoption was earliest reported, as well as integration into mainstream care.
European Nations Closely Followed by Growing National Screening Programs with Policy Support
Most European countries, including the UK, Germany, and France, have quickly adopted NIPT, with backing from national health systems and increasingly favourable policy frameworks. Most governments have rolled out or are undertaking advances in screening programs to begin or expand from the population level. In addition, regional laboratories are teaming up with international players, increasing the accessibility as well as cost-effectiveness of tests, thereby affirming Europe's competitive market space.
Asia-Pacific Becomes the Fastest-Growing NIPT Market Worldwide
On the contrary, NIPT is forecasted to witness the fastest growth in the Asia-Pacific region by virtue of being an extremely populated area, increased income levels, and an increase in the age of mothers. Countries such as China and India illustrate increasingly soaring demand due to rising public awareness, better healthcare coverage, and favourable regulations set by the government to discourage birth defects. Diagnostic players are increasing their footprints in APAC through partner companies and local distribution channels.
Middle East, Africa, and Latin America Show Slow Market Development in NIPT Use with Healthcare Modernisation
Even though it is still in its infancy, it starts to show very nascent stages of uptake within Latin America and the Middle East & Africa, with taking up of NIPT in prenatal care as health care modernisation progresses. Only within the very recent past have investments from both local governments and the private sector started turning their attention to the area of maternal and neonatal health, setting the future stage for growth opportunities. As costs fall, however, it is anticipated that NIPT will grow in both public and private care environments.
Core Strategic Questions Answered in This Report
Q. What is the expected growth trajectory of the non-invasive prenatal testing market from 2024 to 2035?
The global non-invasive prenatal testing market is projected to rise from USD 7.22 billion in 2024 to USD 43.77 billion by 2035, reflecting a robust CAGR of 17.80%. This surge is largely attributed to growing maternal age, increased awareness of genetic disorders, and broader clinical adoption of early prenatal screenings.
Q. Which key factors are fuelling the growth of the non-invasive prenatal testing market?
Key growth drivers include:
Increasing prevalence of chromosomal anomalies and genetic conditions.
Advanced sequencing technologies are improving test sensitivity and affordability.
Government-led reimbursement schemes supporting public access.
Rise in personalised medicine and telehealth applications.
Expanded clinical indications beyond traditional trisomy screening.
Q. What are the primary challenges hindering the growth of the non-invasive prenatal testing market?
Key challenges include:
Lack of standardised test guidelines across countries.
High upfront cost of NGS platforms and reagents.
Regulatory hurdles in expanding clinical applications.
Ethical concerns surrounding fetal DNA analysis.
Limited awareness in low- and middle-income nations.
Q. Which regions currently lead the non-invasive prenatal testing market in terms of market share?
North America currently leads due to high awareness, insurance coverage, and established lab infrastructure, followed by Europe, where national health programs are integrating NIPT into standard prenatal care frameworks.
Q. What emerging opportunities are anticipated in the non-invasive prenatal testing market?
Emerging opportunities include:
Expansion into rare genetic disorder detection.
Use of AI for interpreting low-quality samples.
Integration with telehealth and home testing models.
Growth in untapped Asia-Pacific and Latin American regions.
Partnerships to scale whole-genome NIPT platforms.
Key Benefits for Stakeholders
The report offers a quantitative assessment of market segments, emerging trends, projections, and market dynamics for the period 2024 to 2035.
The report presents comprehensive market research, including insights into key growth drivers, challenges, and potential opportunities.
Porter's Five Forces analysis evaluates the influence of buyers and suppliers, helping stakeholders make strategic, profit-driven decisions and strengthen their supplier-buyer relationships.
A detailed examination of market segmentation helps identify existing and emerging opportunities.
Key countries within each region are analysed based on their revenue contributions to the overall market.
The positioning of market players enables effective benchmarking and provides clarity on their current standing within the industry.
The report covers regional and global market trends, major players, key segments, application areas, and strategies for market expansion.
The global non-invasive prenatal testing (NIPT) market was valued at USD 7.22 billion in 2024 and is anticipated to reach USD 43.77 billion by 2035, expanding at a CAGR of 17.80% during the forecast period (2025–2035). NIPT has gradually moved from being an optional luxury to a clinical choice for early detection of genetic abnormalities in modern prenatal healthcare, with growing trends toward personalised medicine. Expectations about advanced screening tests that maximise the accuracy, lower the risk, and enhance the comfort of both expectant parents and clinicians are being built. Non-invasive techniques analyse fetal DNA through a blood draw of maternal blood and avoid invasive procedures.
Increasing number of cases of chromosomal disorders like Down syndrome, Edwards syndrome, and Patau syndrome have made NIPT an indispensable choice for diagnosis. The NIPT market is in acute demand with changes in demographics, including delayed pregnancy and an increase in awareness toward prenatal health. Moreover, technological advances in the sequencing platform—here, especially the next-generation sequencing (NGS)—have rapidly improved the sensitivity and specificity of the tests, bringing these clinically useful tests within reach of economic viability across markets.
Industrial stakeholders are revisiting operational models through investments in automating processes to improve workflow and to accurately interpret data through bioinformatics platforms and cloud-based reporting tools. Meanwhile, laboratories and chain diagnostics are now broadening their offerings beyond aneuploidy to include testing for sex chromosome abnormalities and microdeletions, and even a whole-genome NIPT, increasing the acceptability of tests in both public and private sectors of healthcare. This shift in the clinical perspective towards safe, scalable, and rapid genetic testing options is paving the way for durable evolution in the market over the next decade.
Recent Developments in the Industry
In January 2024, Illumina, Inc. unveiled its plans to integrate machine learning capabilities into its existing NIPT pipeline to improve diagnostic outcomes. This initiative aims to expedite risk assessment in high-risk pregnancies and improve interpretation accuracy in low-quality samples.
In February 2024, Natera, Inc. upgraded its flagship Panorama test to include screening for rare single-gene disorders alongside common trisomies. The expansion marks a strategic shift toward making NIPT a more comprehensive fetal health evaluation tool.
In April 2024, F. Hoffmann-La Roche AG partnered with PacBio to explore long-read sequencing technology for non-invasive prenatal testing, targeting improved detection of structural variants and sub-chromosomal abnormalities.
Market Dynamics
Rapidly changing demand for early, accurate and safe prenatal screening.
The worldwide trend of moving more toward diagnostics in the earlier stages of pregnancy has also attracted the use of non-invasive prenatal testing. Unlike traditional procedures that have a risk of miscarriage, NIPT offers a safer, highly accurate method for detecting chromosomal abnormalities even as early as the 10th week of gestation. Rising maternal age, coupled with increased awareness of prenatal care, has compelled more expectant parents to use non-invasive options. Continuous improvement in sensitivity and specificity rates has also made healthcare recommend NIPT as the first-line screening tool.
Technological Innovations-Catalyst For Accelerated Market Growth
Rapid advances in sequencing platforms, especially NGS and PCR, have contributed significantly to the reliability of NIPT results. Progressive analytical algorithms, AI-based data interpretations, and bioinformatics integration have resulted in shorter turnaround times while ensuring sharp risk stratification. Microarray and cfDNA quantification technologies have brought test coverage expansions to detecting both microdeletions and rare trisomies. Hence, NIPT is gaining planetary acceptance as a mainstream diagnostic service embraced by both private and public healthcare systems.
Regulatory and Ethical Constraints that Delay Global Expansion
Even though technological innovation burgeons, several countries have strict regulations regarding the approval of such products and international testing. Most importantly, ethical dilemmas regarding whether it should be possible to find out the sex of the fetus and the privacy surrounding genetic information restrain the widespread acceptance of the testing. Furthermore, unavailability and unaffordability of the tests create disparities in health access across income regions and, hence, do not allow patients to have access to these new technologies. Therefore, governments and regulatory bodies are working toward finding a balance between innovation and ethical governance through well-defined guidelines for prenatal testing.
Increased Penetration in Emerging Markets-Big Opportunities
Asia-Pacific and Latin America are ready to enjoy exponential growth due to the strengthening healthcare infrastructure, increasing birth rates, and public health initiatives. Increasing ties of partnerships between diagnostic companies and local healthcare providers also tend to broaden awareness. On the other hand, as sequencing costs decrease, more families will be able to afford accurate prenatal care without resorting to invasive interventions.
Trend Towards Comprehensive Genomic Profiling and Personalised Medicine
The distinct and growing inclination of NIPT toward more genomic testing platforms heralds the new age of personalised obstetric care. Multi-analyte tests that can identify monogenic diseases, microdeletions, and foetal RhD status are reengineering the prenatal diagnostic frameworks. Continued research and development in cfRNA and epigenetic biomarkers are likely to push the frontiers of non-invasive foetal health monitoring beyond chromosomal assessments.
Attractive Opportunities in the Market
Growing demand for early, risk-free detection of fetal abnormalities via non-invasive approaches.
Rising maternal age contributes to widespread adoption of routine NIPT screenings.
NGS-based platforms redefine test accuracy and broaden the clinical utility of NIPT.
Home-based sampling and digital reporting increase prenatal test accessibility.
Emerging markets offer untapped potential due to rising healthcare investment.
Expansion into microdeletions, single-gene disorders, and whole-genome screening.
Improved reimbursement structures and policy endorsements accelerate adoption.
Public-private partnerships support clinical trials and real-world data collection.
Report Segmentation
By Gestation Period: 0–12 Weeks, 13–24 Weeks, 25–36 Weeks
By Pregnancy Risk: High & Average Risk, Low Risk
By Method: Ultrasound Detection, Biochemical Screening Tests, Cell-Free DNA in Maternal Plasma Tests
By Technology: NGS, Array Technology, PCR, Others
By Product: Consumables & Reagents, Instruments
By Application: Trisomy, Microdeletion Syndrome, Other Applications
By End Use: Hospitals & Clinics, Diagnostic Laboratories
By Region: North America (U.S., Canada, Mexico), Europe (UK, Germany, France, Spain, Italy, Spain, Rest of Europe), Asia-Pacific (China, India, Japan, Australia, South Korea, Rest of Asia-Pacific), LAMEA (Brazil, Argentina, UAE, Saudi Arabia (KSA), Africa Rest of Latin America)
Key Market Players: Illumina, Inc., Natera, Inc., F. Hoffmann-La Roche AG, BGI Genomics Co., Ltd., Laboratory Corporation of America Holdings (LabCorp), Quest Diagnostics Incorporated, Agilent Technologies, Inc., Eurofins Scientific, Yourgene Health, Thermo Fisher Scientific Inc.
Report Aspects
Base Year: 2024
Historic Years: 2022, 2023, 2024
Forecast Period: 2025-2035
Report Pages: 293
Dominating Segments
NGS Technology is the Best in All Aspects in the Market- Accuracy and Versatile Diagnosis
Next-generation sequencing (NGS) is unsurpassedly the dominant force in the market for non-invasive prenatal testing (NIPT) on account of its unparalleled accuracy, scalability, and analytical depth. By having the capacity to decode substantial genomic datasets in record time, NGS-based platforms allow clinicians to identify chromosomal abnormalities, microdeletions, and even complex rearrangements with minimal margins of error. With the integration of AI-driven variant interpretation systems by global manufacturers, it adds that NGS assays are turning into must-haves toward the design of prenatal screening, whether clinical or advanced research. The per-genome cost continuously declines, further promoting access to mid-income economies and leading to sustained market dominance.
Commercialisation through DNA Test Seems Leading in Screening Approaches: Acceptance for Clinical Application, Continuous Growth
Cell-free DNA, that is, cfDNA testing in NIPT methodologies, offers non-invasive, high-sensitivity screening for chromosomal abnormalities from maternal plasma. It has from the beginning to the end revolutionized obstetric diagnostics. In fact, fetal DNA fragments can be tested without the risk of fetal loss or early pregnancy failure. This method has increased confidence in obstetric practitioners, going beyond just identifying chromosomal abnormalities, as there have been ongoing clinical validation studies and increased insurance coverage across developed areas that have made cfDNA tests more popular. More research is still ongoing into the incorporation of cfRNA, anticipated to include epigenetic and metabolic indices into clinical practice for assessing the health of the fetus.
Hospitals and Clinics remain the most prominent end-users in the NIPT market.
Hospitals and Clinics remain the most prominent end-users in the NIPT market as they are the most capable in providing integrated counselling, genetic interpretation, and management of results after tests. Since they follow a multidisciplinary prenatal care model, hospitals collectively work with obstetricians, genetic counsellors, and laboratory specialists. In addition, growing public healthcare reimbursement for prenatal screening in countries like the U.S., UK, and Germany has made them the home of NIPT service delivery.
Key Takeaways
Market Booms with Maternal Age – Later pregnancies increase risk and drive routine NIPT screening.
NGS Reigns Supreme – Advanced sequencing drives accuracy and enables new disorder detection.
Consumables Surge – High sample volume boosts recurring demand for reagents and kits.
Remote Testing Expands Reach – Home collection and digital counselling redefine accessibility.
Policy Push – Government-backed programs endorse test inclusion in public health frameworks.
Wide Disorder Spectrum – Expanded test menus now cover rare deletions and gene-level changes.
Automation and AI – Lab workflow enhancements accelerate speed and reliability of results.
Global Adoption – Developing nations emerge as major growth hubs for prenatal testing.
Hospital-Lab Collaborations – Integrated prenatal care models fuel demand for NIPT services.
Insurance Inclusion – Coverage by private and public insurers boosts affordability and uptake.
Regional Insights
North America has been the undisputed leader in the market due to advanced diagnostics and a strong reimbursement ecosystem.
North America, particularly the USA, has mostly been taking the cake in terms of sheer size within NIPT globally because what does one understand but have extremely high levels of awareness, a very technologically advanced diagnostics infrastructure, and a very extensive healthcare reimbursement coverage? Besides, strategic alliances among the payers, hospitals, and test developers have benefited been benefitted in terms of the region in which NIPT adoption was earliest reported, as well as integration into mainstream care.
European Nations Closely Followed by Growing National Screening Programs with Policy Support
Most European countries, including the UK, Germany, and France, have quickly adopted NIPT, with backing from national health systems and increasingly favourable policy frameworks. Most governments have rolled out or are undertaking advances in screening programs to begin or expand from the population level. In addition, regional laboratories are teaming up with international players, increasing the accessibility as well as cost-effectiveness of tests, thereby affirming Europe's competitive market space.
Asia-Pacific Becomes the Fastest-Growing NIPT Market Worldwide
On the contrary, NIPT is forecasted to witness the fastest growth in the Asia-Pacific region by virtue of being an extremely populated area, increased income levels, and an increase in the age of mothers. Countries such as China and India illustrate increasingly soaring demand due to rising public awareness, better healthcare coverage, and favourable regulations set by the government to discourage birth defects. Diagnostic players are increasing their footprints in APAC through partner companies and local distribution channels.
Middle East, Africa, and Latin America Show Slow Market Development in NIPT Use with Healthcare Modernisation
Even though it is still in its infancy, it starts to show very nascent stages of uptake within Latin America and the Middle East & Africa, with taking up of NIPT in prenatal care as health care modernisation progresses. Only within the very recent past have investments from both local governments and the private sector started turning their attention to the area of maternal and neonatal health, setting the future stage for growth opportunities. As costs fall, however, it is anticipated that NIPT will grow in both public and private care environments.
Core Strategic Questions Answered in This Report
Q. What is the expected growth trajectory of the non-invasive prenatal testing market from 2024 to 2035?
The global non-invasive prenatal testing market is projected to rise from USD 7.22 billion in 2024 to USD 43.77 billion by 2035, reflecting a robust CAGR of 17.80%. This surge is largely attributed to growing maternal age, increased awareness of genetic disorders, and broader clinical adoption of early prenatal screenings.
Q. Which key factors are fuelling the growth of the non-invasive prenatal testing market?
Key growth drivers include:
Increasing prevalence of chromosomal anomalies and genetic conditions.
Advanced sequencing technologies are improving test sensitivity and affordability.
Government-led reimbursement schemes supporting public access.
Rise in personalised medicine and telehealth applications.
Expanded clinical indications beyond traditional trisomy screening.
Q. What are the primary challenges hindering the growth of the non-invasive prenatal testing market?
Key challenges include:
Lack of standardised test guidelines across countries.
High upfront cost of NGS platforms and reagents.
Regulatory hurdles in expanding clinical applications.
Ethical concerns surrounding fetal DNA analysis.
Limited awareness in low- and middle-income nations.
Q. Which regions currently lead the non-invasive prenatal testing market in terms of market share?
North America currently leads due to high awareness, insurance coverage, and established lab infrastructure, followed by Europe, where national health programs are integrating NIPT into standard prenatal care frameworks.
Q. What emerging opportunities are anticipated in the non-invasive prenatal testing market?
Emerging opportunities include:
Expansion into rare genetic disorder detection.
Use of AI for interpreting low-quality samples.
Integration with telehealth and home testing models.
Growth in untapped Asia-Pacific and Latin American regions.
Partnerships to scale whole-genome NIPT platforms.
Key Benefits for Stakeholders
The report offers a quantitative assessment of market segments, emerging trends, projections, and market dynamics for the period 2024 to 2035.
The report presents comprehensive market research, including insights into key growth drivers, challenges, and potential opportunities.
Porter's Five Forces analysis evaluates the influence of buyers and suppliers, helping stakeholders make strategic, profit-driven decisions and strengthen their supplier-buyer relationships.
A detailed examination of market segmentation helps identify existing and emerging opportunities.
Key countries within each region are analysed based on their revenue contributions to the overall market.
The positioning of market players enables effective benchmarking and provides clarity on their current standing within the industry.
The report covers regional and global market trends, major players, key segments, application areas, and strategies for market expansion.
Table of Contents
285 Pages
- Chapter 1. Market Snapshot
- 1.1. Market Definition & Report Overview
- 1.2. Market Segmentation
- 1.3. Key Takeaways
- 1.3.1. Top Investment Pockets
- 1.3.2. Top Winning Strategies
- 1.3.3. Market Indicators Analysis
- 1.3.4. Top Impacting Factors
- 1.4. Industry Ecosystem Analysis
- 1.4.1. 360’ Analysis
- Chapter 2. Executive Summary
- 2.1. CEO/CXO Standpoint
- 2.2. Strategic Insights
- 2.3. ESG Analysis
- 2.4 Market Attractiveness Analysis (top leader’s point of view on market)
- 2.5.key Findings
- Chapter 3. Research Methodology
- 3.1 Research Objective
- 3.2 Supply Side Analysis
- 3.1.1. Primary Research
- 3.1.2. Secondary Research
- 3.3 Demand Side Analysis
- 3.1.3. Primary Research
- 3.1.4. Secondary Research
- 3.2. Forecasting Models
- 3.2.1. Assumptions
- 3.2.2. Forecasts Parameters
- 3.3. Competitive breakdown
- 3.3.1. Market Positioning
- 3.3.2. Competitive Strength
- 3.4. Scope of the Study
- 3.4.1. Research Assumption
- 3.4.2. Inclusion & Exclusion
- 3.4.3. Limitations
- Chapter 4. Industry Landscape
- 4.1. Market Dynamics
- 4.1.1. Drivers
- 4.1.2. Restraints
- 4.1.3. Opportunities
- 4.2. Porter’s 5 Forces Model
- 4.2.1. Bargaining Power of Buyer
- 4.2.2. Bargaining Power of Supplier
- 4.2.3. Threat of New Entrants
- 4.2.4. Threat of Substitutes
- 4.2.5. Competitive Rivalry
- 4.3. Value Chain Analysis
- 4.4. PESTEL Analysis
- 4.5. Pricing Analysis and Trends
- 4.6. Key growth factors and trends analysis
- 4.7. Market Share Analysis (2025)
- 4.8. Top Winning Strategies (2025)
- 4.9. Trade Data Analysis (Import Export)
- 4.10. Regulatory Guidelines
- 4.11. Historical Data Analysis
- 4.12. Analyst Recommendation & Conclusion
- Chapter 5. Global Immunohistochemistry Market Size & Forecasts by Gestation Period 2025-2035
- 5.1. Market Overview
- 5.1.1. Market Size and Forecast By Gestation Period 2025-2035
- 5.2. 0–12 Weeks
- 5.2.1. Market definition, current market trends, growth factors, and opportunities
- 5.2.2. Market size analysis, by region, 2025-2035
- 5.2.3. Market share analysis, by country, 2025-2035
- 5.3. 13–24 Weeks
- 5.3.1. Market definition, current market trends, growth factors, and opportunities
- 5.3.2. Market size analysis, by region, 2025-2035
- 5.3.3. Market share analysis, by country, 2025-2035
- 5.4. 25–36 Weeks
- 5.4.1. Market definition, current market trends, growth factors, and opportunities
- 5.4.2. Market size analysis, by region, 2025-2035
- 5.4.3. Market share analysis, by country, 2025-2035
- Chapter 6. Global Immunohistochemistry Market Size & Forecasts by Pregnancy Risk 2025–2035
- 6.1. Market Overview
- 6.1.1. Market Size and Forecast By Pregnancy Risk 2025-2035
- 6.2. High & Average Risk
- 6.2.1. Market definition, current market trends, growth factors, and opportunities
- 6.2.2. Market size analysis, by region, 2025-2035
- 6.2.3. Market share analysis, by country, 2025-2035
- 6.3. Low Risk
- 6.3.1. Market definition, current market trends, growth factors, and opportunities
- 6.3.2. Market size analysis, by region, 2025-2035
- 6.3.3. Market share analysis, by country, 2025-2035
- Chapter 7. Global Immunohistochemistry Market Size & Forecasts by Method 2025–2035
- 7.1. Market Overview
- 7.1.1. Market Size and Forecast By Method 2025-2035
- 7.2. Ultrasound Detection
- 7.2.1. Market definition, current market trends, growth factors, and opportunities
- 7.2.2. Market size analysis, by region, 2025-2035
- 7.2.3. Market share analysis, by country, 2025-2035
- 7.3. Biochemical Screening Tests
- 7.3.1. Market definition, current market trends, growth factors, and opportunities
- 7.3.2. Market size analysis, by region, 2025-2035
- 7.3.3. Market share analysis, by country, 2025-2035
- 7.4. Cell-Free DNA in Maternal Plasma Tests
- 7.4.1. Market definition, current market trends, growth factors, and opportunities
- 7.4.2. Market size analysis, by region, 2025-2035
- 7.4.3. Market share analysis, by country, 2025-2035
- Chapter 8. Global Immunohistochemistry Market Size & Forecasts by Technology 2025–2035
- 8.1. Market Overview
- 8.1.1. Market Size and Forecast By Technology 2025-2035
- 8.2. NGS
- 8.2.1. Market definition, current market trends, growth factors, and opportunities
- 8.2.2. Market size analysis, by region, 2025-2035
- 8.2.3. Market share analysis, by country, 2025-2035
- 8.3. Array Technology
- 8.3.1. Market definition, current market trends, growth factors, and opportunities
- 8.3.2. Market size analysis, by region, 2025-2035
- 8.3.3. Market share analysis, by country, 2025-2035
- 8.4. PCR
- 8.4.1. Market definition, current market trends, growth factors, and opportunities
- 8.4.2. Market size analysis, by region, 2025-2035
- 8.4.3. Market share analysis, by country, 2025-2035
- 8.5. Others
- 8.5.1. Market definition, current market trends, growth factors, and opportunities
- 8.5.2. Market size analysis, by region, 2025-2035
- 8.5.3. Market share analysis, by country, 2025-2035
- Chapter 9. Global Immunohistochemistry Market Size & Forecasts by Product 2025–2035
- 9.1. Market Overview
- 9.1.1. Market Size and Forecast By Product 2025-2035
- 9.2. Consumables & Reagents
- 9.2.1. Market definition, current market trends, growth factors, and opportunities
- 9.2.2. Market size analysis, by region, 2025-2035
- 9.2.3. Market share analysis, by country, 2025-2035
- 9.3. Instruments
- 9.3.1. Market definition, current market trends, growth factors, and opportunities
- 9.3.2. Market size analysis, by region, 2025-2035
- 9.3.3. Market share analysis, by country, 2025-2035
- Chapter 10. Global Immunohistochemistry Market Size & Forecasts by Application 2025–2035
- 10.1. Market Overview
- 10.1.1. Market Size and Forecast By Application 2025-2035
- 10.2. Trisomy
- 10.2.1. Market definition, current market trends, growth factors, and opportunities
- 10.2.2. Market size analysis, by region, 2025-2035
- 10.2.3. Market share analysis, by country, 2025-2035
- 10.3. Microdeletion Syndrome
- 10.3.1. Market definition, current market trends, growth factors, and opportunities
- 10.3.2. Market size analysis, by region, 2025-2035
- 10.3.3. Market share analysis, by country, 2025-2035
- 10.4. Other Applications
- 10.4.1. Market definition, current market trends, growth factors, and opportunities
- 10.4.2. Market size analysis, by region, 2025-2035
- 10.4.3. Market share analysis, by country, 2025-2035
- Chapter 11. Global Immunohistochemistry Market Size & Forecasts by End Use 2025–2035
- 11.1. Market Overview
- 11.1.1. Market Size and Forecast By End Use 2025-2035
- 11.2. Hospitals & Clinics
- 11.2.1. Market definition, current market trends, growth factors, and opportunities
- 11.2.2. Market size analysis, by region, 2025-2035
- 11.2.3. Market share analysis, by country, 2025-2035
- 11.3. Diagnostic Laboratories
- 11.3.1. Market definition, current market trends, growth factors, and opportunities
- 11.3.2. Market size analysis, by region, 2025-2035
- 11.3.3. Market share analysis, by country, 2025-2035
- Chapter 12. Global Immunohistochemistry Market Size & Forecasts by Region 2025–2035
- 12.1. Regional Overview 2025-2035
- 12.2. Top Leading and Emerging Nations
- 12.3. North America Immunohistochemistry Market
- 12.3.1. U.S. Immunohistochemistry Market
- 12.3.1.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.3.1.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.3.1.3. Method breakdown size & forecasts, 2025-2035
- 12.3.1.4. Technology breakdown size & forecasts, 2025-2035
- 12.3.1.5. Product breakdown size & forecasts, 2025-2035
- 12.3.1.6. Application breakdown size & forecasts, 2025-2035
- 12.3.1.7. End Use breakdown size & forecasts, 2025-2035
- 12.3.2. Canada Immunohistochemistry Market
- 12.3.2.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.3.2.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.3.2.3. Method breakdown size & forecasts, 2025-2035
- 12.3.2.4. Technology breakdown size & forecasts, 2025-2035
- 12.3.2.5. Product breakdown size & forecasts, 2025-2035
- 12.3.2.6. Application breakdown size & forecasts, 2025-2035
- 12.3.2.7. End Use breakdown size & forecasts, 2025-2035
- 12.3.3. Mexico Immunohistochemistry Market
- 12.3.3.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.3.3.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.3.3.3. Method breakdown size & forecasts, 2025-2035
- 12.3.3.4. Technology breakdown size & forecasts, 2025-2035
- 12.3.3.5. Product breakdown size & forecasts, 2025-2035
- 12.3.3.6. Application breakdown size & forecasts, 2025-2035
- 12.3.3.7. End Use breakdown size & forecasts, 2025-2035
- 12.4. Europe Immunohistochemistry Market
- 12.4.1. UK Immunohistochemistry Market
- 12.4.1.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.4.1.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.4.1.3. Method breakdown size & forecasts, 2025-2035
- 12.4.1.4. Technology breakdown size & forecasts, 2025-2035
- 12.4.1.5. Product breakdown size & forecasts, 2025-2035
- 12.4.1.6. Application breakdown size & forecasts, 2025-2035
- 12.4.1.7. End Use breakdown size & forecasts, 2025-2035
- 12.4.2. Germany Immunohistochemistry Market
- 12.4.2.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.4.2.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.4.2.3. Method breakdown size & forecasts, 2025-2035
- 12.4.2.4. Technology breakdown size & forecasts, 2025-2035
- 12.4.2.5. Product breakdown size & forecasts, 2025-2035
- 12.4.2.6. Application breakdown size & forecasts, 2025-2035
- 12.4.2.7. End Use breakdown size & forecasts, 2025-2035
- 12.4.3. France Immunohistochemistry Market
- 12.4.3.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.4.3.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.4.3.3. Method breakdown size & forecasts, 2025-2035
- 12.4.3.4. Technology breakdown size & forecasts, 2025-2035
- 12.4.3.5. Product breakdown size & forecasts, 2025-2035
- 12.4.3.6. Application breakdown size & forecasts, 2025-2035
- 12.4.3.7. End Use breakdown size & forecasts, 2025-2035
- 12.4.4. Spain Immunohistochemistry Market
- 12.4.4.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.4.4.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.4.4.3. Method breakdown size & forecasts, 2025-2035
- 12.4.4.4. Technology breakdown size & forecasts, 2025-2035
- 12.4.4.5. Product breakdown size & forecasts, 2025-2035
- 12.4.4.6. Application breakdown size & forecasts, 2025-2035
- 12.4.4.7. End Use breakdown size & forecasts, 2025-2035
- 12.4.5. Italy Immunohistochemistry Market
- 12.4.5.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.4.5.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.4.5.3. Method breakdown size & forecasts, 2025-2035
- 12.4.5.4. Technology breakdown size & forecasts, 2025-2035
- 12.4.5.5. Product breakdown size & forecasts, 2025-2035
- 12.4.5.6. Application breakdown size & forecasts, 2025-2035
- 12.4.5.7. End Use breakdown size & forecasts, 2025-2035
- 12.4.6. Rest of Europe Immunohistochemistry Market
- 12.4.6.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.4.6.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.4.6.3. Method breakdown size & forecasts, 2025-2035
- 12.4.6.4. Technology breakdown size & forecasts, 2025-2035
- 12.4.6.5. Product breakdown size & forecasts, 2025-2035
- 12.4.6.6. Application breakdown size & forecasts, 2025-2035
- 12.4.6.7. End Use breakdown size & forecasts, 2025-2035
- 12.5. Asia Pacific Immunohistochemistry Market
- 12.5.1. China Immunohistochemistry Market
- 12.5.1.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.5.1.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.5.1.3. Method breakdown size & forecasts, 2025-2035
- 12.5.1.4. Technology breakdown size & forecasts, 2025-2035
- 12.5.1.5. Product breakdown size & forecasts, 2025-2035
- 12.5.1.6. Application breakdown size & forecasts, 2025-2035
- 12.5.1.7. End Use breakdown size & forecasts, 2025-2035
- 12.5.2. India Immunohistochemistry Market
- 12.5.2.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.5.2.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.5.2.3. Method breakdown size & forecasts, 2025-2035
- 12.5.2.4. Technology breakdown size & forecasts, 2025-2035
- 12.5.2.5. Product breakdown size & forecasts, 2025-2035
- 12.5.2.6. Application breakdown size & forecasts, 2025-2035
- 12.5.2.7. End Use breakdown size & forecasts, 2025-2035
- 12.5.3. Japan Immunohistochemistry Market
- 12.5.3.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.5.3.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.5.3.3. Method breakdown size & forecasts, 2025-2035
- 12.5.3.4. Technology breakdown size & forecasts, 2025-2035
- 12.5.3.5. Product breakdown size & forecasts, 2025-2035
- 12.5.3.6. Application breakdown size & forecasts, 2025-2035
- 12.5.3.7. End Use breakdown size & forecasts, 2025-2035
- 12.5.4. Australia Immunohistochemistry Market
- 12.5.4.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.5.4.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.5.4.3. Method breakdown size & forecasts, 2025-2035
- 12.5.4.4. Technology breakdown size & forecasts, 2025-2035
- 12.5.4.5. Product breakdown size & forecasts, 2025-2035
- 12.5.4.6. Application breakdown size & forecasts, 2025-2035
- 12.5.4.7. End Use breakdown size & forecasts, 2025-2035
- 12.5.5. South Korea Immunohistochemistry Market
- 12.5.5.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.5.5.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.5.5.3. Method breakdown size & forecasts, 2025-2035
- 12.5.5.4. Technology breakdown size & forecasts, 2025-2035
- 12.5.5.5. Product breakdown size & forecasts, 2025-2035
- 12.5.5.6. Application breakdown size & forecasts, 2025-2035
- 12.5.5.7. End Use breakdown size & forecasts, 2025-2035
- 12.5.6. Rest of APAC Immunohistochemistry Market
- 12.5.6.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.5.6.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.5.6.3. Method breakdown size & forecasts, 2025-2035
- 12.5.6.4. Technology breakdown size & forecasts, 2025-2035
- 12.5.6.5. Product breakdown size & forecasts, 2025-2035
- 12.5.6.6. Application breakdown size & forecasts, 2025-2035
- 12.5.6.7. End Use breakdown size & forecasts, 2025-2035
- 12.6. LAMEA Immunohistochemistry Market
- 12.6.1. Brazil Immunohistochemistry Market
- 12.6.1.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.6.1.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.6.1.3. Method breakdown size & forecasts, 2025-2035
- 12.6.1.4. Technology breakdown size & forecasts, 2025-2035
- 12.6.1.5. Product breakdown size & forecasts, 2025-2035
- 12.6.1.6. Application breakdown size & forecasts, 2025-2035
- 12.6.1.7. End Use breakdown size & forecasts, 2025-2035
- 12.6.2. Argentina Immunohistochemistry Market
- 12.6.2.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.6.2.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.6.2.3. Method breakdown size & forecasts, 2025-2035
- 12.6.2.4. Technology breakdown size & forecasts, 2025-2035
- 12.6.2.5. Product breakdown size & forecasts, 2025-2035
- 12.6.2.6. Application breakdown size & forecasts, 2025-2035
- 12.6.2.7. End Use breakdown size & forecasts, 2025-2035
- 12.6.3. UAE Immunohistochemistry Market
- 12.6.3.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.6.3.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.6.3.3. Method breakdown size & forecasts, 2025-2035
- 12.6.3.4. Technology breakdown size & forecasts, 2025-2035
- 12.6.3.5. Product breakdown size & forecasts, 2025-2035
- 12.6.3.6. Application breakdown size & forecasts, 2025-2035
- 12.6.3.7. End Use breakdown size & forecasts, 2025-2035
- 12.6.4. Saudi Arabia (KSA Immunohistochemistry Market
- 12.6.4.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.6.4.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.6.4.3. Method breakdown size & forecasts, 2025-2035
- 12.6.4.4. Technology breakdown size & forecasts, 2025-2035
- 12.6.4.5. Product breakdown size & forecasts, 2025-2035
- 12.6.4.6. Application breakdown size & forecasts, 2025-2035
- 12.6.4.7. End Use breakdown size & forecasts, 2025-2035
- 12.6.5. Africa Immunohistochemistry Market
- 12.6.5.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.6.5.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.6.5.3. Method breakdown size & forecasts, 2025-2035
- 12.6.5.4. Technology breakdown size & forecasts, 2025-2035
- 12.6.5.5. Product breakdown size & forecasts, 2025-2035
- 12.6.5.6. Application breakdown size & forecasts, 2025-2035
- 12.6.5.7. End Use breakdown size & forecasts, 2025-2035
- 12.6.6. Rest of LAMEA Immunohistochemistry Market
- 12.6.6.1. Gestation Period breakdown size & forecasts, 2025-2035
- 12.6.6.2. Pregnancy Risk breakdown size & forecasts, 2025-2035
- 12.6.6.3. Method breakdown size & forecasts, 2025-2035
- 12.6.6.4. Technology breakdown size & forecasts, 2025-2035
- 12.6.6.5. Product breakdown size & forecasts, 2025-2035
- 12.6.6.6. Application breakdown size & forecasts, 2025-2035
- 12.6.6.7. End Use breakdown size & forecasts, 2025-2035
- Chapter 13. Company Profiles
- 13.1. Top Market Strategies
- 13.2. Company Profiles
- 13.2.1. F. Hoffmann-La Roche Ltd
- 13.2.1.1. Company Overview
- 13.2.1.2. Key Executives
- 13.2.1.3. Company Snapshot
- 13.2.1.4. Financial Performance (Subject to Data Availability)
- 13.2.1.5. Product/Services Port
- 13.2.1.6. Recent Development
- 13.2.1.7. Market Strategies
- 13.2.1.8. SWOT Analysis
- 13.2.2. Agilent Technologies, Inc.
- 13.2.3. Danaher Corporation
- 13.2.4. Thermo Fisher Scientific Inc.
- 13.2.5. Merck KGaA
- 13.2.6. Bio-Rad Laboratories, Inc.
- 13.2.7. PerkinElmer, Inc.
- 13.2.8. Bio-Techne Corporation
- 13.2.9. Abcam plc
- 13.2.10. Cell Signaling Technology, Inc..
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