시장보고서
상품코드
2104981

신생항원 암 백신 시장 규모, 점유율, 동향 분석 : 백신 유형별, 투여 방법별, 용도별, 최종사용자별 - 세계 기회 분석과 산업 예측(2026-2036년)

Neoantigen Cancer Vaccine Market Size, Share & Trends Analysis by Vaccine Type, Delivery Modality, Application, and End User - Global Opportunity Analysis & Industry Forecast (2026-2036)

발행일: | 리서치사: 구분자 Meticulous Research | 페이지 정보: 영문 289 Pages | 배송안내 : 5-7일 (영업일 기준)

    
    
    




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※ 본 상품은 영문 자료로 한글과 영문 목차에 불일치하는 내용이 있을 경우 영문을 우선합니다. 정확한 검토를 위해 영문 목차를 참고해주시기 바랍니다.

세계의 신생항원 암 백신 시장은 2025년에 9억 달러 규모에 달하고, 2026년에는 추정 14억 달러 달러에서 2036년까지 128억 달러에 달할 것으로 예측되며, 예측 기간 동안 CAGR은 24.6%를 기록할 전망입니다. 본 보고서에서는 맞춤형 종양학, 암 면역요법, 유전체 시퀀싱 기술, 인공지능(AI) 기반 신생항원 예측 플랫폼, 백신 개발 기술, 임상 파이프라인 확대, 경쟁 전략, 백신 종류, 기술 플랫폼, 투여법, 임상 단계, 용도, 최종사용자, 지역별 미래 성장 기회에 대한 진전을 분석하여 세계 시장에 대한 종합적인 평가를 수행하고 있습니다.

신생항원 암 백신은 암세포에만 존재하고 정상 조직에는 존재하지 않는 종양 특이적 돌연변이에 대해 면역계를 자극하도록 설계된 차세대 면역요법 접근법입니다. 공통적인 종양 관련 항원을 표적으로 하는 기존의 암 백신과 달리, 신생항원 백신은 환자 고유의 종양 돌연변이를 활용하여 자가면역 반응의 위험을 최소화하면서, 고도로 표적화된 면역 반응을 유도합니다. 이러한 백신은 첨단 유전체 시퀀싱, 생물정보학 분석, 컴퓨터 기반 예측 도구를 활용하여 개발되며, 암을 공격하는 T세포 반응을 활성화할 수 있는 종양 특이적 신생항원을 식별합니다.

암 발병률 증가, 맞춤형 암 치료에 대한 수요 확대, 차세대 염기서열 분석(NGS)의 발전, 정밀 의학의 보급 확대, 면역종양학 연구에 대한 투자 증가로 인해 이 시장은 눈부신 성장을 이루고 있습니다. 맞춤형 신생항원 백신 후보물질의 임상적 진전은 이 치료 접근법에 대한 신뢰를 높이고 있으며, 제약사, 생명공학 기업, 연구 기관이 암 백신 개발 프로그램을 확대하는 데 박차를 가하고 있습니다.

기술의 진보로 인해 백신의 설계, 제조 속도, 치료의 개인화가 향상되면서 신생항원 암 백신의 생태계는 변혁을 맞이하고 있습니다. mRNA 백신 플랫폼, AI를 활용한 신생항원 예측 알고리즘, 유전체 시퀀싱, 계산 면역학, 지질 나노입자(LNP) 전달 시스템, 자동 백신 제조 기술의 혁신을 통해 맞춤형 암 백신의 보다 효율적인 식별 및 개발이 가능해졌습니다. mRNA 기반 플랫폼은 신속한 제조 능력, 여러 신생항원을 암호화하는 능력, 그리고 강력한 면역 반응을 유도하는 입증된 잠재력 덕분에 널리 채택되고 있습니다.

병용요법에 대한 관심이 높아짐에 따라, 신생항원 암 백신에는 더 많은 기회가 생겨나고 있습니다. 이러한 백신은 항종양 반응을 강화하고 치료 성과를 향상시키기 위해 면역관문억제제 및 기타 면역요법과 병용하여 평가가 진행되고 있습니다. 신생항원 백신과 체크포인트 억제제를 결합한 임상 프로그램은 흑색종, 폐암, 대장암 및 기타 고형암 분야에서 확대되고 있습니다.

또한, 환자 고유의 신생항원을 보다 신속하고 정확하게 식별할 수 있게 해주는 시퀀싱 기술 및 계산 도구의 발전도 시장에 긍정적인 영향을 미치고 있습니다. AI 및 기계 학습의 통합을 통해 연구자들은 유망한 신생항원 후보의 우선순위 설정, 백신 설계 최적화, 개발 기간 단축을 도모할 수 있게 되었습니다.

높은 성장 잠재력을 지닌 반면, 이 시장은 복잡한 맞춤형 제조 공정, 높은 개발 비용, 규제상의 복잡성, 맞춤형 치료의 확장성 한계, 그리고 신항원 예측 정확도 향상의 필요성 등의 과제에 직면해 있습니다. 각 기업은 표준화된 제조 워크플로우, 신생항원 공유 접근 방식, 첨단 컴퓨팅 플랫폼, 확장성이 뛰어난 mRNA 기반 기술을 통해 이러한 과제를 해결하고 있습니다.

본 보고서는 시장 역학, 기술 발전, 경쟁 구도, 새로운 기회를 분석함으로써 전 세계 신생항원 암 백신 시장에 대한 종합적인 평가를 제공합니다. 본 조사에서는 주요 업계 동향, 임상 개발, 전략적 제휴, 파트너십, 합병 및 인수, 제품 혁신, 주요 시장 참여 기업이 채택하고 있는 경쟁 전략을 평가하여, 전 세계 암 면역요법 생태계에서 활동하는 제약사, 생명공학 기업, 투자자, 의료 서비스 제공자, 연구 기관 및 기타 이해관계자에게 실질적인 인사이트를 제공합니다.

시장 역학

신생항원 암 백신 시장은 맞춤형 암 치료에 대한 수요 증가, 암 면역 치료에 대한 투자 확대, 종양 특이적 백신 접근법의 임상적 유효성 입증이 진행됨에 따라 성장하고 있습니다. 유전체 시퀀싱 및 계산 생물학의 발전으로 연구자들은 환자 고유의 암 돌연변이를 식별하고 표적화된 면역요법을 개발할 수 있게 되었습니다.

기술 혁신은 여전히 주요 성장 요인으로, mRNA 플랫폼, AI를 활용한 신생항원 예측, 첨단 전달 시스템, 자동화된 제조 솔루션이 백신 개발 효율 향상에 기여하고 있습니다. 그러나 맞춤형 생산의 복잡성, 제조 비용, 규제 요건, 치료 접근성과 관련된 과제가 시장 확산에 계속해서 영향을 미치고 있습니다.

제약 기업의 투자 확대, 임상시험 증가, 고형암에 대한 적응증 확대, 생명공학 기업과 연구 기관 간의 협력 강화로 인해 예측 기간 동안 시장 성장을 위한 큰 기회가 창출될 것으로 전망됩니다.

부문 분석

본 보고서는 백신 유형, 기술 플랫폼, 투여 방법, 임상 단계, 적응증, 최종사용자, 지역별로 신생항원 암 백신 시장에 대한 종합적인 분석을 제공하며, 이해관계자들이 고성장 부문과 새로운 비즈니스 기회를 파악할 수 있도록 지원합니다.

목차

제1장 소개

제2장 조사 방법

제3장 주요 요약

제4장 시장 개요

제5장 신생항원 암 백신 시장 : 백신 유형별

제6장 신생항원 암 백신 시장 : 기술 플랫폼별

제7장 신생항원 암 백신 시장 : 투여 방법별

제8장 신생항원 암 백신 시장 : 임상 단계별

제9장 신생항원 암 백신 시장 : 용도별

제10장 신생항원 암 백신 시장 : 최종사용자별

제11장 신생항원 암 백신 시장 : 지역별

제12장 경쟁 구도

제13장 기업 개요

제14장 부록

KSM

The global Neoantigen Cancer Vaccine Market was valued at USD 0.9 billion in 2025 and is projected to reach USD 12.8 billion by 2036 from an estimated USD 1.4 billion in 2026, registering a CAGR of 24.6% during the forecast period. The report provides a comprehensive assessment of the global market by analyzing advancements in personalized oncology, cancer immunotherapy, genomic sequencing technologies, artificial intelligence (AI)-based neoantigen prediction platforms, vaccine development technologies, clinical pipeline expansion, competitive strategies, and future growth opportunities across vaccine types, technology platforms, delivery modalities, clinical stages, applications, end users, and geographic regions.

Neoantigen cancer vaccines represent a next-generation immunotherapy approach designed to stimulate the immune system against tumor-specific mutations that are present only in cancer cells and absent from healthy tissues. Unlike conventional cancer vaccines targeting shared tumor-associated antigens, neoantigen vaccines leverage patient-specific tumor mutations to generate highly targeted immune responses while minimizing the risk of autoimmune reactions. These vaccines are developed using advanced genomic sequencing, bioinformatics analysis, and computational prediction tools to identify tumor-specific neoantigens capable of activating cancer-fighting T-cell responses.

The market is witnessing significant growth due to increasing cancer incidence, rising demand for personalized cancer therapies, advancements in next-generation sequencing (NGS), growing adoption of precision medicine, and increasing investments in immuno-oncology research. The clinical progress of personalized neoantigen vaccine candidates has strengthened confidence in this therapeutic approach and encouraged pharmaceutical companies, biotechnology firms, and research organizations to expand their oncology vaccine development programs.

Technological advancements are transforming the neoantigen cancer vaccine ecosystem by improving vaccine design, manufacturing speed, and treatment personalization. Innovations in mRNA vaccine platforms, AI-driven neoantigen prediction algorithms, genomic sequencing, computational immunology, lipid nanoparticle (LNP) delivery systems, and automated vaccine manufacturing technologies are enabling more efficient identification and development of individualized cancer vaccines. mRNA-based platforms are gaining strong adoption due to their rapid manufacturing capabilities, ability to encode multiple neoantigens, and demonstrated potential in generating robust immune responses.

The increasing focus on combination therapies is creating additional opportunities for neoantigen cancer vaccines. These vaccines are being evaluated alongside immune checkpoint inhibitors and other immunotherapies to enhance anti-tumor responses and improve treatment outcomes. Clinical programs combining neoantigen vaccines with checkpoint inhibitors are expanding across melanoma, lung cancer, colorectal cancer, and other solid tumors.

The market is also benefiting from improvements in sequencing technologies and computational tools that enable faster and more accurate identification of patient-specific neoantigens. The integration of AI and machine learning is helping researchers prioritize promising neoantigen candidates, optimize vaccine design, and reduce development timelines.

Despite strong growth potential, the market faces challenges including complex personalized manufacturing processes, high development costs, regulatory complexities, limited scalability of individualized therapies, and the need for robust neoantigen prediction accuracy. Companies are addressing these challenges through standardized manufacturing workflows, shared neoantigen approaches, advanced computational platforms, and scalable mRNA-based technologies.

This report provides a comprehensive assessment of the global neoantigen cancer vaccine market by analyzing market dynamics, technology advancements, competitive landscape, and emerging opportunities. The study evaluates major industry trends, clinical developments, strategic collaborations, partnerships, mergers and acquisitions, product innovations, and competitive strategies adopted by leading market participants to provide actionable insights for pharmaceutical companies, biotechnology firms, investors, healthcare providers, research institutions, and other stakeholders operating in the global cancer immunotherapy ecosystem.

Market Dynamics

The neoantigen cancer vaccine market is expanding due to increasing demand for personalized oncology treatments, rising investments in cancer immunotherapy, and growing clinical validation of tumor-specific vaccine approaches. Advances in genomic sequencing and computational biology are enabling researchers to identify patient-specific cancer mutations and develop targeted immune therapies.

Technological innovation remains a major growth driver, with mRNA platforms, AI-based neoantigen prediction, advanced delivery systems, and automated manufacturing solutions improving vaccine development efficiency. However, challenges related to personalized production complexity, manufacturing costs, regulatory requirements, and treatment accessibility continue to influence market adoption.

Growing investments by pharmaceutical companies, increasing clinical trials, expanding applications across solid tumors, and rising collaborations between biotechnology companies and research institutions are expected to create significant opportunities for market growth during the forecast period

Segment Analysis

The report provides an extensive analysis of the neoantigen cancer vaccine market across vaccine type, technology platform, delivery modality, clinical stage, application, end user, and geography, enabling stakeholders to identify high-growth segments and emerging business opportunities.

Based on vaccine type, the market is segmented into personalized neoantigen vaccines and shared neoantigen vaccines.

Personalized neoantigen vaccines represent the leading segment due to their ability to generate patient-specific immune responses by targeting unique mutations identified within individual tumors. Increasing adoption of precision oncology approaches, advancements in next-generation sequencing (NGS), and improvements in computational neoantigen prediction are supporting the growth of personalized vaccine development. These vaccines are being extensively evaluated in clinical trials for melanoma, lung cancer, colorectal cancer, and other solid tumors.

Shared neoantigen vaccines are expected to witness increasing adoption due to their potential for broader patient applicability and improved scalability compared with fully individualized approaches. By targeting commonly occurring tumor mutations across patient populations, shared neoantigen vaccines may help overcome manufacturing complexity and reduce production timelines.

Based on technology platform, the market is analyzed across mRNA-based vaccines, peptide-based vaccines, DNA-based vaccines, viral vector-based vaccines, and dendritic cell-based vaccines.

mRNA-based vaccines are expected to account for a significant share of the market due to their rapid design capabilities, manufacturing flexibility, and ability to encode multiple neoantigens within a single vaccine construct. The success of mRNA technologies in infectious disease applications has accelerated investments in oncology applications, including personalized cancer vaccines.

Peptide-based vaccines continue to represent an important technology segment due to their established development pathways, favorable safety profiles, and ability to induce targeted immune responses. Advances in peptide design and antigen selection are improving their therapeutic potential.

Viral vector-based and dendritic cell-based platforms are also being explored due to their strong immunogenicity and ability to activate cellular immune responses. These platforms are being evaluated in combination with other immunotherapies to enhance anti-tumor activity.

Based on delivery modality, the market is segmented into in vivo delivery and ex vivo delivery approaches.

In vivo delivery approaches are gaining attention due to their potential to simplify vaccine administration and improve scalability. Advances in lipid nanoparticles and other delivery technologies are supporting the development of efficient methods for delivering neoantigen vaccine components directly into patients.

Ex vivo approaches remain important for personalized vaccine development, particularly for platforms involving patient-derived immune cells or specialized antigen-presenting cell technologies.

Based on clinical stage, the market is analyzed across preclinical, Phase I, Phase II, Phase III, and commercial stages.

Phase II clinical-stage programs represent a significant segment due to increasing transition of neoantigen vaccine candidates from early safety studies toward efficacy evaluation. Growing clinical evidence demonstrating immune activation and potential therapeutic benefits is encouraging further investment.

Based on application, the market is evaluated across melanoma, lung cancer, colorectal cancer, breast cancer, and other solid tumors.

Melanoma represents a major application segment due to high mutation rates associated with the disease and strong responsiveness to immunotherapy approaches. Neoantigen vaccines are being extensively investigated in melanoma treatment, often in combination with immune checkpoint inhibitors.

Lung cancer and colorectal cancer are expected to witness significant growth due to increasing research focused on developing personalized immunotherapies for patients with high unmet medical needs.

Based on end user, the market is segmented into pharmaceutical and biotechnology companies, academic and research institutions, hospitals and cancer centers, and contract research organizations (CROs).

Pharmaceutical and biotechnology companies represent the leading end-user segment due to significant investments in oncology pipelines, clinical trials, and commercialization strategies. CROs and research institutions are also gaining importance by supporting clinical development, genomic analysis, and vaccine optimization activities.

Regional Analysis

The report provides a detailed assessment of market performance across North America, Europe, Asia-Pacific, Latin America, and the Middle East & Africa. Regional analysis considers cancer burden, biotechnology investments, genomic research capabilities, clinical trial activity, healthcare infrastructure, and adoption of precision medicine technologies.

North America dominates the neoantigen cancer vaccine market due to strong oncology research infrastructure, presence of leading biotechnology companies, significant investments in personalized medicine, and a high number of clinical trials. The region benefits from advanced genomic sequencing capabilities and strong collaborations between pharmaceutical companies and research institutions.

Europe represents a significant market supported by growing investments in cancer immunotherapy, expanding precision medicine initiatives, and increasing research collaborations focused on personalized cancer vaccines.

Asia-Pacific is expected to register strong growth due to rising cancer incidence, increasing biotechnology investments, expanding clinical research capabilities, and growing adoption of advanced genomic technologies. Countries such as China, Japan, South Korea, and Singapore are strengthening their cancer immunotherapy ecosystems.

Latin America and the Middle East & Africa are expected to present emerging opportunities due to improving healthcare infrastructure, increasing cancer research initiatives, and growing access to advanced oncology treatments.

Competitive Landscape

The report presents a detailed evaluation of the competitive landscape, offering valuable insights into the strategic positioning of major industry participants. It examines company portfolios, neoantigen discovery platforms, vaccine development capabilities, technology platforms, clinical pipelines, manufacturing expertise, business strategies, partnerships, collaborations, mergers and acquisitions, product developments, and other significant corporate initiatives shaping the competitive environment.

Company benchmarking enables stakeholders to compare market participants based on their neoantigen identification technologies, genomic sequencing capabilities, artificial intelligence (AI)-based prediction platforms, vaccine design approaches, mRNA and peptide-based vaccine expertise, clinical development progress, manufacturing capabilities, regulatory experience, geographic presence, and competitive strengths. The report also evaluates the evolving competitive landscape driven by advancements in precision oncology, next-generation sequencing, computational immunology, AI-enabled antigen prediction, personalized vaccine manufacturing, and combination immunotherapy approaches.

As pharmaceutical and biotechnology companies increasingly focus on personalized cancer treatments, market participants are investing in innovative neoantigen discovery and vaccine development platforms to improve treatment precision, shorten manufacturing timelines, and enhance therapeutic outcomes. Companies are strengthening their positions through proprietary technologies, strategic collaborations with academic institutions and research organizations, licensing agreements, clinical trial advancements, and expansion of oncology immunotherapy pipelines.

Continuous innovation aimed at improving neoantigen prediction accuracy, optimizing vaccine formulations, enhancing immune response, reducing manufacturing complexity, and developing scalable production approaches is expected to drive competitive differentiation across the market. Leading companies are also focusing on integrated solutions combining genomic analysis, computational modeling, vaccine design, manufacturing, and clinical development support to accelerate the translation of neoantigen vaccines from research platforms to commercial therapies.

Strategic partnerships between biotechnology companies, pharmaceutical organizations, technology providers, and research institutions are becoming increasingly important for advancing personalized cancer vaccine development. Companies are investing in AI-driven platforms, automated manufacturing technologies, and next-generation delivery systems to address challenges associated with individualized vaccine production and broader clinical adoption.

Key companies profiled in the report include BioNTech SE, Moderna, Inc., Gritstone bio, Inc., Genentech (Roche Group), Nouscom AG, ISA Pharmaceuticals B.V., Evaxion Biotech A/S, BrightPath Biotherapeutics Co., Ltd., Neon Therapeutics (acquired by BioNTech), and Immatics N.V.

How This Report Helps

  • Provides reliable market size estimates and long-term growth forecasts.
  • Evaluates key market drivers, restraints, opportunities, challenges, and emerging neoantigen vaccine trends.
  • Identifies high-growth vaccine type, technology platform, delivery modality, clinical stage, application, end-user, and regional segments.
  • Assesses innovation trends across personalized cancer vaccines, mRNA platforms, AI-based neoantigen prediction, and precision oncology.
  • Benchmarks leading companies based on technology capabilities, clinical pipelines, strategic initiatives, and competitive positioning.
  • Supports investment planning, partnership evaluation, clinical development strategies, technology assessment, and market entry decisions.
  • Provides actionable insights for pharmaceutical companies, biotechnology firms, research organizations, investors, healthcare providers, and other stakeholders operating in the global cancer immunotherapy ecosystem.

Key Questions Answered

  • What is the current size of the global neoantigen cancer vaccine market, and what is its projected growth through 2036?
  • Which factors are driving, restraining, and influencing market growth?
  • What opportunities and challenges are expected to shape the industry during the forecast period?
  • Which vaccine types, technology platforms, delivery modalities, applications, end users, and regions are expected to witness the strongest growth?
  • Which regions offer the most attractive opportunities for neoantigen cancer vaccine development and adoption?
  • Who are the leading companies operating in the market, and how are they strengthening their competitive positions?
  • What recent clinical advancements, technology developments, partnerships, mergers and acquisitions, and strategic initiatives are influencing the competitive landscape?
  • How can stakeholders leverage market intelligence from this report to support strategic planning, investment decisions, clinical development, and growth across the global neoantigen cancer vaccine market?

TABLE OF CONTENTS

1. Introduction

  • 1.1 Market Definition
  • 1.2 Scope
  • 1.3 Market Ecosystem
  • 1.4 Currency and Limitations
    • 1.4.1 Currency
    • 1.4.2 Limitations
  • 1.5 Key Stakeholders

2. Research Methodology

  • 2.1 Research Approach
  • 2.2 Data Collection & Validation
    • 2.2.1 Secondary Research
    • 2.2.2 Primary Research (Oncologists, Biopharma, Researchers, CROs)
  • 2.3 Market Estimation
    • 2.3.1 Bottom-Up Approach
    • 2.3.2 Top-Down Approach
    • 2.3.3 Forecast Modeling
  • 2.4 Data Triangulation
  • 2.5 Assumptions

3. Executive Summary

4. Market Overview

  • 4.1 Introduction
  • 4.2 Market Dynamics
    • 4.2.1 Drivers
      • 4.2.1.1 Growing Adoption of Personalized Cancer Immunotherapy
      • 4.2.1.2 Advancements in Genomics and Sequencing Technologies
      • 4.2.1.3 Increasing Cancer Incidence Globally
      • 4.2.1.4 Strong Pipeline of Neoantigen Vaccine Candidates
    • 4.2.2 Restraints
      • 4.2.2.1 High Cost of Personalized Vaccine Development
      • 4.2.2.2 Complex Manufacturing and Logistics
      • 4.2.2.3 Limited Commercial Approvals
    • 4.2.3 Opportunities
      • 4.2.3.1 Combination Therapies with Checkpoint Inhibitors
      • 4.2.3.2 Advances in AI-driven Neoantigen Prediction
      • 4.2.3.3 Expansion in mRNA Vaccine Platforms
      • 4.2.3.4 Growth in Clinical Trials
    • 4.2.4 Challenges
      • 4.2.4.1 Regulatory Complexity
      • 4.2.4.2 Variability in Patient-specific Responses
  • 4.3 Technology Landscape
    • 4.3.1 mRNA-based Neoantigen Vaccines
    • 4.3.2 Peptide-based Vaccines
    • 4.3.3 DNA-based Vaccines
    • 4.3.4 Viral Vector-based Vaccines
    • 4.3.5 Dendritic Cell-based Vaccines
    • 4.3.6 AI & Bioinformatics for Neoantigen Identification
  • 4.4 Neoantigen Vaccine Ecosystem
    • 4.4.1 Biopharmaceutical Companies
    • 4.4.2 Genomics & Sequencing Providers
    • 4.4.3 CROs & CDMOs
    • 4.4.4 Research Institutes
    • 4.4.5 Healthcare Providers
  • 4.5 Value Chain Analysis
    • 4.5.1 Tumor Sample Collection
    • 4.5.2 Genomic Sequencing & Analysis
    • 4.5.3 Neoantigen Identification & Selection
    • 4.5.4 Vaccine Design & Manufacturing
    • 4.5.5 Clinical Administration
  • 4.6 Regulatory Landscape
    • 4.6.1 FDA & EMA Guidelines
    • 4.6.2 Clinical Trial Regulations
    • 4.6.3 Personalized Medicine Regulatory Frameworks
  • 4.7 Industry Trends
    • 4.7.1 Rise of mRNA-based Cancer Vaccines
    • 4.7.2 Increasing Collaboration Between Pharma & Tech Firms
    • 4.7.3 Growth of Personalized Oncology
    • 4.7.7 Integration of AI in Vaccine Design
  • 4.8 Cost and Pricing Analysis
    • 4.8.1 Cost per Patient
    • 4.8.2 Manufacturing Cost Analysis
    • 4.8.3 Reimbursement Challenges

5. Neoantigen Cancer Vaccine Market, by Vaccine Type

  • 5.1 Introduction
  • 5.2 Personalized Neoantigen Vaccines
  • 5.3 Shared Neoantigen Vaccines

6. Neoantigen Cancer Vaccine Market, by Technology Platform

  • 6.1 mRNA-based Vaccines
  • 6.2 Peptide-based Vaccines
  • 6.3 DNA-based Vaccines
  • 6.4 Viral Vector-based Vaccines
  • 6.5 Dendritic Cell-based Vaccines

7. Neoantigen Cancer Vaccine Market, by Delivery Modality

  • 7.1 Injectable Vaccines
  • 7.2 Intradermal Delivery
  • 7.3 Other Delivery Methods

8. Neoantigen Cancer Vaccine Market, by Clinical Stage

  • 8.1 Preclinical
  • 8.2 Phase I
  • 8.3 Phase II
  • 8.4 Phase III

9. Neoantigen Cancer Vaccine Market, by Application

  • 9.1 Introduction
  • 9.2 Solid Tumors
    • 9.2.1 Lung Cancer
    • 9.2.2 Melanoma
    • 9.2.3 Breast Cancer
    • 9.2.4 Colorectal Cancer
    • 9.2.5 Other Solid Tumors
  • 9.3 Hematological Cancers
    • 9.3.1 Leukemia
    • 9.3.2 Lymphoma
    • 9.3.3 Multiple Myeloma
  • 9.4 Combination Therapies

10. Neoantigen Cancer Vaccine Market, by End User

  • 10.1 Hospitals & Cancer Treatment Centers
  • 10.2 Research Institutes
  • 10.3 Biopharmaceutical Companies

11. Neoantigen Cancer Vaccine Market, by Geography

  • 11.1 Introduction
  • 11.2 North America
    • 11.2.1 U.S.
    • 11.2.2 Canada
  • 11.3 Europe
    • 11.3.1 Germany
    • 11.3.2 U.K.
    • 11.3.3 France
    • 11.3.4 Italy
    • 11.3.5 Spain
    • 11.3.6 Netherlands
    • 11.3.7 Sweden
    • 11.3.8 Switzerland
    • 11.3.9 Rest of Europe
  • 11.4 Asia-Pacific
    • 11.4.1 China
    • 11.4.2 Japan
    • 11.4.3 India
    • 11.4.4 South Korea
    • 11.4.5 Australia
    • 11.4.6 Singapore
    • 11.4.7 Rest of Asia-Pacific
  • 11.5 Latin America
    • 11.5.1 Brazil
    • 11.5.2 Mexico
    • 11.5.3 Rest of Latin America
  • 11.6 Middle East & Africa
    • 11.6.1 UAE
    • 11.6.2 Saudi Arabia
    • 11.6.3 South Africa
    • 11.6.4 Rest of MEA

12. Competitive Landscape

  • 12.1 Overview
  • 12.2 Key Growth Strategies
  • 12.3 Competitive Benchmarking
  • 12.4 Competitive Dashboard
    • 12.4.1 Industry Leaders
    • 12.4.2 Market Differentiators
    • 12.4.3 Emerging Players
  • 12.5 Market Ranking/Positioning Analysis

13. Company Profiles

  • 13.1 Moderna, Inc.
  • 13.2 BioNTech SE
  • 13.3 Genentech (Roche)
  • 13.4 Gritstone bio, Inc.
  • 13.5 Neon Therapeutics
  • 13.6 CureVac N.V.
  • 13.7 AstraZeneca plc
  • 13.8 Merck & Co., Inc.
  • 13.9 Pfizer Inc.
  • 13.10 Immatics N.V.
  • 13.11 ISA Pharmaceuticals B.V.
  • 13.12 Vaccibody AS
  • 13.13 Nouscom AG
  • 13.14 Genocea Biosciences
  • 13.15 Advaxis Inc.

14. Appendix

  • 14.1 Customization Options
  • 14.2 Related Reports
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