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農業におけるミニ染色体技術市場- 世界の産業規模、動向、機会、予測、組込み特性別、作物タイプ別、エンドユーザー別、地域別、競合別、2019年~2029年

Minichromosomal Technology in Agriculture Market - Global Industry Size, Share, Trends, Opportunity, and Forecast, Segmented By Trait Incorporated, By Crop Type, By End User, By Region and Competition, 2019-2029F


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英文 190 Pages
納期
2~3営業日
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農業におけるミニ染色体技術市場- 世界の産業規模、動向、機会、予測、組込み特性別、作物タイプ別、エンドユーザー別、地域別、競合別、2019年~2029年
出版日: 2024年04月15日
発行: TechSci Research
ページ情報: 英文 190 Pages
納期: 2~3営業日
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  • 概要
  • 目次
概要

農業におけるミニ染色体技術の世界市場は、2023年に3億2,344万米ドルと評価され、2029年までのCAGRは6.25%で、予測期間中に目覚ましい成長を遂げると予測されています。

農業におけるミニクロモソーム技術は、作物改良の分野を完全に変革する可能性を秘めた、信じられないほど変革的な進歩です。既存の染色体から人工的に合成されたミニ染色体の力を利用することで、この革新的なアプローチはまったく新しい可能性の領域を切り開く。これらのミニ染色体は、本来の染色体を破壊することなく、植物に複数の望ましい形質を導入するための驚くべき追加プラットフォームとして機能します。このことは、科学者たちが、作物にさまざまな有益な形質を与えるための、より正確で制御された手段を手に入れたことを意味します。この画期的な技術によって、作物改良の可能性は事実上無限となった。時間がかかり、予測不可能な従来の育種方法だけに頼る時代は終わった。その代わりに、研究者はミニ染色体の力を利用し、比類のない正確さと効率で望ましい形質を導入できるようになった。

この技術の持つ意味は広大かつ広範囲に及ぶ。農業の生産性と持続可能性を大幅に向上させる可能性があるだけでなく、食糧安全保障や気候変動といった差し迫った世界的課題に対処するための有望な解決策を提供します。科学者が特定のニーズに合わせて作物を精密に調整できるようにすることで、ミニ染色体技術は、より弾力的で適応力のある農業システムへの道を開く。ミニ染色体技術のイントロダクションは、作物改良の探求における大きな飛躍を意味します。複数の望ましい形質を、制御された正確な方法で植物に導入するその能力は、農業への取り組み方を一変させる可能性を秘めています。この画期的な技術により、作物改良の新時代を切り開く準備が整った。

主な市場促進要因

作物に対する需要の高まり

農業研究開発への投資

遺伝学バイオテクノロジーの進歩

作物収量増加の必要性

主な市場課題

インフラの不足

熟練した専門家の不足

主要市場動向

精密農業技術の台頭

農業における研究開発の増加

セグメント別洞察

形質別の洞察

作物タイプ別の洞察

地域別の洞察

目次

第1章 概要

第2章 調査手法

第3章 エグゼクティブサマリー

第4章 農業におけるミニ染色体技術の世界市場展望

  • 市場規模予測
    • 金額別
  • 市場シェア予測
    • 組込み特性別(干ばつ耐性、窒素利用改善、除草剤耐性、害虫抵抗性、その他)
    • 作物タイプ別(シロイヌナズナ、トウモロコシ、その他)
    • エンドユーザー別(農業バイオテクノロジー企業、学術研究機関、その他)
    • 地域別
    • 企業別(2023年)
  • 市場マップ

第5章 北米の農業におけるミニ染色体技術市場の展望

  • 市場規模予測
    • 金額別
  • 市場シェア予測
    • 組込み特性別
    • 作物タイプ別
    • エンドユーザー別
    • 国別
  • 北米国別分析
    • 米国
    • カナダ
    • メキシコ

第6章 欧州の農業におけるミニ染色体技術市場の展望

  • 市場規模予測
    • 金額別
  • 市場シェア予測
    • 組込み特性別
    • 作物タイプ別
    • エンドユーザー別
    • 国別
  • 欧州国別分析
    • ドイツ
    • 英国
    • イタリア
    • フランス
    • スペイン

第7章 アジア太平洋の農業におけるミニ染色体技術市場の展望

  • 市場規模予測
    • 金額別
  • 市場シェア予測
    • 組込み特性別
    • 作物タイプ別
    • エンドユーザー別
    • 国別
  • アジア太平洋地域国別分析
    • 中国
    • インド
    • 日本
    • 韓国
    • オーストラリア

第8章 南米の農業におけるミニ染色体技術市場の展望

  • 市場規模予測
    • 金額別
  • 市場シェア予測
    • 組込み特性別
    • 作物タイプ別
    • エンドユーザー別
    • 国別
  • 南米:国別分析
    • ブラジル
    • アルゼンチン
    • コロンビア

第9章 中東・アフリカの農業におけるミニ染色体技術市場の展望

  • 市場規模予測
    • 金額別
  • 市場シェア予測
    • 組込み特性別
    • 作物タイプ別
    • エンドユーザー別
    • 国別
  • MEA:国別分析
    • 南アフリカ
    • サウジアラビア
    • アラブ首長国連邦

第10章 市場力学

  • 促進要因
  • 課題

第11章 市場動向と発展

  • 合併買収(もしあれば)
  • 製品上市(もしあれば)
  • 最近の動向

第12章 市場動向ポーターのファイブフォース分析

  • 業界内の競合
  • 新規参入の可能性
  • サプライヤーの力
  • 顧客の力
  • 代替品の脅威

第13章 競合情勢

  • Chromatin, Inc.(Syngenta)
  • Icon Genetics AG(Bayer AG)
  • Evogene Ltd.
  • Lonza Group Ltd.
  • Precision Biosciences, Inc.

第14章 戦略的提言

第15章 免責事項

目次
Product Code: 8109

Global Minichromosomal Technology in Agriculture Market was valued at USD 323.44 Million in 2023 and is anticipated to project impressive growth in the forecast period with a CAGR of 6.25% through 2029. Minichromosomal technology in agriculture is an incredibly transformative advancement that has the potential to completely revolutionize the field of crop improvement. By harnessing the power of synthetic, engineered mini-chromosomes derived from existing chromosomes, this innovative approach opens up a whole new realm of possibilities. These mini-chromosomes serve as remarkable additional platforms for the introduction of multiple desired traits into plants, without causing any disruption to the native chromosomes. This means that scientists now have a more precise and controlled means of enhancing crops with a wide array of beneficial traits. With this groundbreaking technology, the potential for crop improvement becomes virtually limitless. Gone are the days of relying solely on traditional breeding methods that can be time-consuming and unpredictable. Instead, researchers can now harness the power of minichromosomal to introduce desirable traits with unparalleled accuracy and efficiency.

The implications of this technology are vast and far-reaching. It not only has the potential to significantly increase agricultural productivity and sustainability but also offers a promising solution to address pressing global challenges, such as food security and climate change. By enabling scientists to precisely tailor crops to meet specific needs, minichromosomal technology paves the way for a more resilient and adaptable agricultural system. The introduction of minichromosomal technology represents a major leap forward in the quest to improve crops. Its ability to introduce multiple desired traits into plants in a controlled and precise manner has the potential to transform the way we approach agriculture. With this revolutionary technology, we are poised to unlock a new era of crop improvement, one that holds immense promise for a more sustainable and food-secure future.

Key Market Drivers

Growing Demand for Crops

The increasing global population and corresponding demand for food continue to put pressure on the agricultural sector to improve crop yields. Consequently, this has led to a surge in demand for minichromosomal technology in agriculture worldwide. Minichromosomal, which are compact and separate from the native chromosomes, serve as effective tools for introducing new genetic traits into crops. They can hold multiple genes and are not subjected to gene-silencing effects common with traditional genetic modification methods. As food demand escalates, the benefits of these artificial chromosomes cannot be overlooked. They can potentially revolutionize crop production by making it possible to engineer plants with enhanced traits such as improved drought resistance, increased nutritional content, and greater disease resistance. By enhancing crop resilience and productivity, minichromosomal technology could help address the growing global demand for food. Furthermore, it can contribute to sustainable farming methods by reducing the reliance on harmful agricultural chemicals. Therefore, the mounting pressure for higher crop yields is anticipated to spur the adoption of this technology on a global scale.

Investments in Agricultural Research Development

Investments in Agricultural Research and Development (RD) are poised to significantly bolster the global demand for Minichromosomal Technology (MCT) in the agricultural sector. The pressing need for sustainable and efficient farming methods, coupled with the increasing global population, necessitates innovative solutions. MCT, with its capability to introduce multiple agronomically important traits into plants without disturbing native genetics, stands as a promising candidate. Boosting RD in agriculture allows for the exploration and refinement of such technologies, paving the way for their broader adoption. Increased investments would mean more comprehensive research, leading to improved understanding, robust application, and widespread acceptance of MCT. As agricultural RD uncovers the full potential of MCT, its demand is expected to surge. Furthermore, the global drive towards food security underscores the need for efficient crop production methods. MCT, with its ability to enhance crop productivity and resilience, thus comes to the fore. Hence, as investments in agricultural RD rise, they are likely to create a ripple effect, pushing the demand for MCT in agriculture globally.

Advances in Genetics Biotechnology

Advances in genetics and biotechnology are poised to significantly increase the demand for minichromosomal technology in global agriculture. The increasing need to enhance crop productivity and nutritional value in response to escalating global food demand is driving this surge. Minichromosomal technology, a cutting-edge biotechnological development, enables the introduction of multiple traits into plants without disrupting native genes. This technology can revolutionize the agricultural sector by enabling the engineering of crops that can withstand environmental stresses such as droughts, pests and diseases, and even climate change. Moreover, it can also be employed to augment the nutritional content of crops, thereby helping combat nutrient deficiencies in regions grappling with malnutrition. Furthermore, as genetic research progresses, the potential applications of minichromosomal technology are expanding, adding to its appeal. In the wake of these advancements, a surge in demand for this technology in the agricultural sector is anticipated across the globe, transforming not only the face of modern agriculture but also addressing food security challenges on a global scale.

Need for Increased Crop Yield

The burgeoning global population and the resultant increase in food demand are expected to significantly drive the adoption of minichromosomal technology in agriculture. This technology is renowned for its ability to introduce multiple traits into plants, potentially revolutionising crop yield. In essence, the intrinsic need for food security and improved agricultural productivity is propelling nations worldwide to welcome such advanced technologies. Minichromosomal technology allows for the addition of new genes to existing plant chromosomes without interfering with the plant's natural genetic makeup. This results in enhanced crop yield and improved resistance to diseases and adverse weather conditions. As the pressure mounts to meet the escalating global food demand, the role of such innovative technologies becomes indispensable. Projections indicate a surge in the adoption of minichromosomal technology across both developed and developing nations, in a bid to achieve sustainable agriculture. Additionally, the technology's potential to enable the production of biofuel crops could further bolster its demand. In a world grappling with climate change and its effects on agriculture, minichromosomal technology offers a promising solution to increase crop yield and meet global food requirements.

Key Market Challenges

Lack of Infrastructure

The global demand for Minichromosomal Technology in Agriculture is projected to decrease due to the overarching issue of a lack of infrastructure. Primarily, this technology requires advanced laboratory facilities and trained personnel for successful implementation, resources that are scarce in many developing countries where agriculture forms a significant part of their economies. In these regions, the absence of such infrastructure poses a formidable barrier to the adoption of this high-tech, yet potentially transformative, agricultural technology. Furthermore, the dearth of robust logistics and cold storage facilities essential for the transportation and preservation of genetically modified crops can compromise the efficacy of minichromosomal technology, inhibiting its adoption on a global scale. In addition, the lack of reliable electricity and internet connectivity, both critical for the technology's data-driven aspects, further impedes its implementation in remote agricultural areas. Lastly, the scarcity of regulatory frameworks that ensure the safe and ethical use of such technologies also plays a role in curbing global demand. As a result, even as Minichromosomal Technology promises to revolutionize agriculture with enhanced crop yield and resilience, the dearth of necessary infrastructure significantly hampers its global adoption and demand.

Lack of Skilled Professionals

Minichromosomal technology is on the brink of revolutionizing global agriculture by enabling the introduction of multiple traits into crops in a single step. However, its adoption is threatened by the global shortage of skilled professionals capable of managing and implementing this advanced technology. This technology is complex, requiring deep understanding and proficiency in agricultural biotechnology, which is presently a niche skill set. As a result, the scarcity of trained professionals is likely to hamper the application and development of this technology on a global scale. To compound the issue, the training and development of these skills can take significant time and investment. Global agriculture is a field demanding quick solutions to persistent problems such as crop disease and changing climate conditions. The inability to immediately leverage minichromosomal technology due to a lack of a skilled workforce might lead to a decline in its demand, as the industry may gravitate towards more readily implementable solutions. Thus, while minichromosomal technology holds immense potential for agriculture, the shortage of trained professionals is a substantial hurdle that can decrease its global demand.

Key Market Trends

Rise Of Precision Farming Techniques

Precision farming, also known as precision agriculture, optimizes the efficiency of farm operations through the use of advanced technologies. The rise of precision farming techniques is driving the global demand for Minichromosomal Technology (MCT) in agriculture. MCT offers an innovative approach to plant genetic modification by allowing the insertion of multiple genes into plant chromosomes. This leads to enhanced traits such as improved yield, resistance to pests, and tolerance to adverse environmental conditions. As precision farming emphasizes on-site specific crop management and real-time monitoring, the integration of MCT can further optimize these operations. Moreover, the global food demand is increasing due to the rapidly growing population, and MCT provides a sustainable solution to meet this demand efficiently. Additionally, the minimization of chemical-based pesticides and fertilizers usage through MCT aligns with the environment-friendly approach of precision farming. Hence, the rise of precision farming techniques is expected to significantly propel the demand for Minichromosomal Technology in global agriculture markets.

Increased RD in Agriculture

Global agriculture is at a pivotal juncture as it grapples with the formidable challenge of feeding an ever-increasing world population while simultaneously reducing harmful environmental impacts. A key solution to these issues lies in the realm of Research Development (RD), particularly in leveraging emerging technologies such as minichromosomal technology. This technology allows for the addition of hundreds of genes into plants without disturbing their existing genetic makeup. With an increase in global RD investment, there is the potential for revolutionary breakthroughs to make agriculture more efficient, sustainable, and resilient to climate change. In particular, advancements in minichromosomal technology could pave the way for creating crop varieties with enhanced productivity and resistance to pests, diseases, and harsh environmental conditions. This technology also presents the opportunity to engineer crops that require fewer chemical inputs, consume less water, and contribute less to greenhouse gas emissions. As such, the global demand for minichromosomal technology in agriculture is expected to surge, driven by its potential to deliver transformative solutions for food security and environmental sustainability. A pivotal role is anticipated for RD in unlocking this potential and addressing the pressing challenges of global agriculture.

Segmental Insights

Trait Incorporated Insights

Based on the Trait Incorporated, the global minichromosomal technology in agriculture market is currently dominated by pest resistance, a ground-breaking innovation that has revolutionized agricultural practices. With its remarkable ability to protect crops from a wide range of harmful pests, this technology has gained widespread adoption and recognition in the industry. By reducing the reliance on chemical pesticides, it promotes environmentally friendly farming practices, contributing to the preservation of the ecosystem. Moreover, it not only safeguards crop but also enhances their yield, ensuring sustainable food production for a growing global population. This cutting-edge technology combines advanced genetic engineering techniques with meticulous research and development, resulting in the creation of resilient crops that can withstand various pest pressures. Farmers worldwide have embraced this technology as a powerful tool to combat pests, increase productivity, and ensure food security for future generations. With continuous advancements and improvements, the potential of Minichromosomal Technology in Agriculture is limitless, promising a brighter and more sustainable future for the agricultural industry.

Crop Type Insights

Based on the crop type, in the global minichromosomal technology in agriculture market, arabidopsis emerges as the dominating species. Renowned for its remarkably small genome size and rapid life cycle, Arabidopsis has gained recognition as the preferred model organism for genomic studies. This prominence positions Arabidopsis at the forefront of the adoption and utilization of minichromosomal technology. By leveraging this innovative approach, researchers can potentially introduce multiple agronomically important traits simultaneously, providing a promising avenue for advancing agricultural practices and crop improvement.

Regional Insights

North America is currently at the forefront of the global minichromosomal technology in agriculture market. The region's dominance is a result of its advanced agricultural practices, which incorporate innovative techniques and sustainable farming methods. These practices include precision farming, vertical farming, and hydroponics, which optimize resource utilization and minimize environmental impact. Furthermore, North America's robust investment in research and development has further propelled its position in this market. The region is home to prestigious agricultural research institutions and cutting-edge biotechnology companies, fostering a culture of innovation and driving continuous advancements in the field.

The rapid acceptance and adoption of genomic technologies, aimed at enhancing crop yield and resistance, have also contributed significantly to North America's success. Farmers and agribusinesses in the region are leveraging advanced genetic engineering techniques, such as gene editing and marker-assisted selection, to develop crops with improved traits, including higher yield, enhanced disease resistance, and increased tolerance to environmental stressors. With its unwavering focus on precision agriculture and continuous pursuit of cutting-edge advancements, North America continues to lead the way in revolutionizing the agricultural industry. The region serves as a global hub for agricultural innovation, attracting investments and collaborations from around the world. As a result, North America remains poised to drive further growth and transformation in the Minichromosomal Technology in Agriculture Market.

Key Market Players

Chromatin, Inc. (Syngenta)

Icon Genetics AG (Bayer AG)

Evogene Ltd.

Lonza Group Ltd.

Precision Biosciences, Inc.

Report Scope:

In this report, the Global Minichromosomal Technology in Agriculture Market has been segmented into the following categories, in addition to the industry trends which have also been detailed below:

Minichromosomal Technology in Agriculture Market,By Trait Incorporated:

  • Drought Tolerance
  • Improved Nitrogen Use
  • Herbicide Tolerance
  • Pest Resistance
  • Others

Minichromosomal Technology In Agriculture Market,By Crop Type:

  • Arabidopsis
  • Maize
  • Others

Minichromosomal Technology In Agriculture Market,By End User:

  • Agriculture Biotechnology Companies
  • Academic Research Institutes
  • Others

Minichromosomal Technology In Agriculture Market, By Region:

  • North America
    • United States
    • Canada
    • Mexico
  • Europe
    • France
    • United Kingdom
    • Italy
    • Germany
    • Spain
  • Asia-Pacific
    • China
    • India
    • Japan
    • Australia
    • South Korea
  • South America
    • Brazil
    • Argentina
    • Colombia
  • Middle East Africa
    • South Africa
    • Saudi Arabia
    • UAE

Competitive Landscape

Company Profiles: Detailed analysis of the major companies present in the Global Minichromosomal Technology In Agriculture Market.

Available Customizations:

Global Minichromosomal Technology In Agriculture market report with the given market data, Tech Sci Research offers customizations according to a company's specific needs. The following customization options are available for the report:

Company Information

Detailed analysis and profiling of additional market players (up to five).

Table of Contents

1.Product Overview

  • 1.1.Market Definition
  • 1.2.Scope of the Market
    • 1.2.1.Markets Covered
    • 1.2.2.Years Considered for Study
    • 1.2.3.Key Market Segmentations

2.Research Methodology

  • 2.1.Objective of the Study
  • 2.2.Baseline Methodology
  • 2.3.Key Industry Partners
  • 2.4.Major Association and Secondary Sources
  • 2.5.Forecasting Methodology
  • 2.6.Data Triangulation Validations
  • 2.7.Assumptions and Limitations

3.Executive Summary

  • 3.1.Overview of the Market
  • 3.2.Overview of Key Market Segmentations
  • 3.3.Overview of Key Market Players
  • 3.4.Overview of Key Regions/Countries
  • 3.5.Overview of Market Drivers, Challenges, Trends
  • 3.6.Voice of Customer

4.Global Minichromosomal Technology In Agriculture Market Outlook

  • 4.1.Market Size Forecast
    • 4.1.1.By Value
  • 4.2.Market Share Forecast
    • 4.2.1.By Trait Incorporated (Drought Tolerance, Improved Nitrogen Use, Herbicide Tolerance, Pest Resistance, Others)
    • 4.2.2.By Crop Type (Arabidopsis, Maize, Others)
    • 4.2.3.By End User (Agriculture Biotechnology Companies, Academic Research Institutes, Others)
    • 4.2.4.By Region
    • 4.2.5.By Company (2023)
  • 4.3.Market Map

5.North America Minichromosomal Technology In Agriculture Market Outlook

  • 5.1.Market Size Forecast
    • 5.1.1.By Value
  • 5.2.Market Share Forecast
    • 5.2.1.ByTrait Incorporated
    • 5.2.2.By Crop Type
    • 5.2.3.By End User
    • 5.2.4.By Country
  • 5.3.North America: Country Analysis
    • 5.3.1.United States Minichromosomal Technology In Agriculture Market Outlook
      • 5.3.1.1.Market Size Forecast
        • 5.3.1.1.1.By Value
      • 5.3.1.2.Market Share Forecast
        • 5.3.1.2.1.By Trait Incorporated
        • 5.3.1.2.2.By Crop Type
        • 5.3.1.2.3.By End User
    • 5.3.2.Canada Minichromosomal Technology In Agriculture Market Outlook
      • 5.3.2.1.Market Size Forecast
        • 5.3.2.1.1.By Value
      • 5.3.2.2.Market Share Forecast
        • 5.3.2.2.1.By Trait Incorporated
        • 5.3.2.2.2.By Crop Type
        • 5.3.2.2.3.By End User
    • 5.3.3.Mexico Minichromosomal Technology In Agriculture Market Outlook
      • 5.3.3.1.Market Size Forecast
        • 5.3.3.1.1.By Value
      • 5.3.3.2.Market Share Forecast
        • 5.3.3.2.1.By Trait Incorporated
        • 5.3.3.2.2.By Crop Type
        • 5.3.3.2.3.By End User

6.Europe Minichromosomal Technology In Agriculture Market Outlook

  • 6.1.Market Size Forecast
    • 6.1.1.By Value
  • 6.2.Market Share Forecast
    • 6.2.1.By Trait Incorporated
    • 6.2.2.By Crop Type
    • 6.2.3.By End User
    • 6.2.4.By Country
  • 6.3.Europe: Country Analysis
    • 6.3.1.Germany Minichromosomal Technology In Agriculture Market Outlook
      • 6.3.1.1.Market Size Forecast
        • 6.3.1.1.1.By Value
      • 6.3.1.2.Market Share Forecast
        • 6.3.1.2.1.By Trait Incorporated
        • 6.3.1.2.2.By Crop Type
        • 6.3.1.2.3.By End User
    • 6.3.2.United Kingdom Minichromosomal Technology In Agriculture Market Outlook
      • 6.3.2.1.Market Size Forecast
        • 6.3.2.1.1.By Value
      • 6.3.2.2.Market Share Forecast
        • 6.3.2.2.1.By Trait Incorporated
        • 6.3.2.2.2.By Crop Type
        • 6.3.2.2.3.By End User
    • 6.3.3.Italy Minichromosomal Technology In Agriculture Market Outlook
      • 6.3.3.1.Market Size Forecast
        • 6.3.3.1.1.By Value
      • 6.3.3.2.Market Share Forecasty
        • 6.3.3.2.1.By Trait Incorporated
        • 6.3.3.2.2.By Crop Type
        • 6.3.3.2.3.By End User
    • 6.3.4.France Minichromosomal Technology In Agriculture Market Outlook
      • 6.3.4.1.Market Size Forecast
        • 6.3.4.1.1.By Value
      • 6.3.4.2.Market Share Forecast
        • 6.3.4.2.1.By Trait Incorporated
        • 6.3.4.2.2.By Crop Type
        • 6.3.4.2.3.By End User
    • 6.3.5.Spain Minichromosomal Technology In Agriculture Market Outlook
      • 6.3.5.1.Market Size Forecast
        • 6.3.5.1.1.By Value
      • 6.3.5.2.Market Share Forecast
        • 6.3.5.2.1.By Trait Incorporated
        • 6.3.5.2.2.By Crop Type
        • 6.3.5.2.3.By End User

7.Asia-Pacific Minichromosomal Technology In Agriculture Market Outlook

  • 7.1.Market Size Forecast
    • 7.1.1.By Value
  • 7.2.Market Share Forecast
    • 7.2.1.By Trait Incorporated
    • 7.2.2.By Crop Type
    • 7.2.3.By End User
    • 7.2.4.By Country
  • 7.3.Asia-Pacific: Country Analysis
    • 7.3.1.China Minichromosomal Technology In Agriculture Market Outlook
      • 7.3.1.1.Market Size Forecast
        • 7.3.1.1.1.By Value
      • 7.3.1.2.Market Share Forecast
        • 7.3.1.2.1.By Trait Incorporated
        • 7.3.1.2.2.By Crop Type
        • 7.3.1.2.3.By End User
    • 7.3.2.India Minichromosomal Technology In Agriculture Market Outlook
      • 7.3.2.1.Market Size Forecast
        • 7.3.2.1.1.By Value
      • 7.3.2.2.Market Share Forecast
        • 7.3.2.2.1.By Trait Incorporated
        • 7.3.2.2.2.By Crop Type
        • 7.3.2.2.3.By End User
    • 7.3.3.Japan Minichromosomal Technology In Agriculture Market Outlook
      • 7.3.3.1.Market Size Forecast
        • 7.3.3.1.1.By Value
      • 7.3.3.2.Market Share Forecast
        • 7.3.3.2.1.By Trait Incorporated
        • 7.3.3.2.2.By Crop Type
        • 7.3.3.2.3.By End User
    • 7.3.4.South Korea Minichromosomal Technology In Agriculture Market Outlook
      • 7.3.4.1.Market Size Forecast
        • 7.3.4.1.1.By Value
      • 7.3.4.2.Market Share Forecast
        • 7.3.4.2.1.By Trait Incorporated
        • 7.3.4.2.2.By Crop Type
        • 7.3.4.2.3.By End User
    • 7.3.5.Australia Minichromosomal Technology In Agriculture Market Outlook
      • 7.3.5.1.Market Size Forecast
        • 7.3.5.1.1.By Value
      • 7.3.5.2.Market Share Forecast
        • 7.3.5.2.1.By Trait Incorporated
        • 7.3.5.2.2.By Crop Type
        • 7.3.5.2.3.By End User

8.South America Minichromosomal Technology In Agriculture Market Outlook

  • 8.1.Market Size Forecast
    • 8.1.1.By Value
  • 8.2.Market Share Forecast
    • 8.2.1.By Trait Incorporated
    • 8.2.2.By Crop Type
    • 8.2.3.By End User
    • 8.2.4.By Country
  • 8.3.South America: Country Analysis
    • 8.3.1.Brazil Minichromosomal Technology In Agriculture Market Outlook
      • 8.3.1.1.Market Size Forecast
        • 8.3.1.1.1.By Value
      • 8.3.1.2.Market Share Forecast
        • 8.3.1.2.1.By Trait Incorporated
        • 8.3.1.2.2.By Crop Type
        • 8.3.1.2.3.By End User
    • 8.3.2.Argentina Minichromosomal Technology In Agriculture Market Outlook
      • 8.3.2.1.Market Size Forecast
        • 8.3.2.1.1.By Value
      • 8.3.2.2.Market Share Forecast
        • 8.3.2.2.1.By Trait Incorporated
        • 8.3.2.2.2.By Crop Type
        • 8.3.2.2.3.By End User
    • 8.3.3.Colombia Minichromosomal Technology In Agriculture Market Outlook
      • 8.3.3.1.Market Size Forecast
        • 8.3.3.1.1.By Value
      • 8.3.3.2.Market Share Forecast
        • 8.3.3.2.1.By Trait Incorporated
        • 8.3.3.2.2.By Crop Type
        • 8.3.3.2.3.By End User

9.Middle East and Africa Minichromosomal Technology In Agriculture Market Outlook

  • 9.1.Market Size Forecast
    • 9.1.1.By Value
  • 9.2.Market Share Forecast
    • 9.2.1.By Trait Incorporated
    • 9.2.2.By Crop Type
    • 9.2.3.By End User
    • 9.2.4.By Country
  • 9.3.MEA: Country Analysis
    • 9.3.1.South Africa Minichromosomal Technology In Agriculture Market Outlook
      • 9.3.1.1.Market Size Forecast
        • 9.3.1.1.1.By Value
      • 9.3.1.2.Market Share Forecast
        • 9.3.1.2.1.By Trait Incorporated
        • 9.3.1.2.2.By Crop Type
        • 9.3.1.2.3.By End User
    • 9.3.2.Saudi Arabia Minichromosomal Technology In Agriculture Market Outlook
      • 9.3.2.1.Market Size Forecast
        • 9.3.2.1.1.By Value
      • 9.3.2.2.Market Share Forecast
        • 9.3.2.2.1.By Trait Incorporated
        • 9.3.2.2.2.By Crop Type
        • 9.3.2.2.3.By End User
    • 9.3.3.UAE Minichromosomal Technology In Agriculture Market Outlook
      • 9.3.3.1.Market Size Forecast
        • 9.3.3.1.1.By Value
      • 9.3.3.2.Market Share Forecast
        • 9.3.3.2.1.By Trait Incorporated
        • 9.3.3.2.2.By Crop Type
        • 9.3.3.2.3.By End User

10.Market Dynamics

  • 10.1.Drivers
  • 10.2.Challenges

11.Market Trends Developments

  • 11.1.Merger Acquisition (If Any)
  • 11.2.Product Launches (If Any)
  • 11.3.Recent Developments

12.Porters Five Forces Analysis

  • 12.1.Competition in the Industry
  • 12.2.Potential of New Entrants
  • 12.3.Power of Suppliers
  • 12.4.Power of Customers
  • 12.5.Threat of Substitute Products

13.Competitive Landscape

  • 13.1.Chromatin, Inc. (Syngenta)
    • 13.1.1.Business Overview
    • 13.1.2.Company Snapshot
    • 13.1.3.Products Services
    • 13.1.4.Financials (As Reported)
    • 13.1.5.Recent Developments
    • 13.1.6.Key Personnel Details
    • 13.1.7.SWOT Analysis
  • 13.2.Icon Genetics AG (Bayer AG)
  • 13.3.Evogene Ltd.
  • 13.4.Lonza Group Ltd.
  • 13.5.Precision Biosciences, Inc.

14.Strategic Recommendations

15.About Us Disclaimer