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How can plant genetic engineering contribute to cost-effective fish vaccine development for promoting sustainable aquaculture?

机译:植物基因工程如何为促进可持续水产养殖的经济有效的鱼疫苗开发做出贡献?

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摘要

Aquaculture, the fastest growing food-producing sector, now accounts for nearly 50 % of the world’s food fish (FAO in The state of world fisheries and aquaculture. FAO, Rome, ). The global aquaculture production of food fish reached 62.7 million tonnes in 2011 and is continuously increasing with an estimated production of food fish of 66.5 million tonnes in 2012 (a 9.4 % increase in 1 year, FAO, ). Aquaculture is not only important for sustainable protein-based food fish production but also for the aquaculture industry and economy worldwide. Disease prevention is the key issue to maintain a sustainable development of aquaculture. Widespread use of antibiotics in aquaculture has led to the development of antibiotic-resistant bacteria and the accumulation of antibiotics in the environment, resulting in water and soil pollution. Thus, vaccination is the most effective and environmentally-friendly approach to combat diseases in aquaculture to manage fish health. Furthermore, when compared to >760 vaccines against human diseases, there are only about 30 fish vaccines commercially available, suggesting the urgent need for development and cost-effective production of fish vaccines for managing fish health, especially in the fast growing fish farming in Asia where profit is minimal and therefore given high priority. Plant genetic engineering has made significant contributions to production of biotech crops for food, feed, valuable recombinant proteins etc. in the past three decades. The use of plants for vaccine production offers several advantages such as low cost, safety and easy scaling up. To date a large number of plant-derived vaccines, antibodies and therapeutic proteins have been produced for human health, of which a few have been made commercially available. However, the development of animal vaccines in plants, especially fish vaccines by genetic engineering, has not yet been addressed. Therefore, there is a need to exploit plant biotechnology for cost effective fish vaccine development in plants, in particular, edible crops for oral fish vaccines. This review provides insight into (1) the current status of fish vaccine and vaccination in aquaculture, (2) plant biotechnology and edible crops for fish vaccines for oral administration, (3) regulatory constraints and (4) conclusions and future perspectives.
机译:水产养殖是增长最快的食品生产部门,目前占世界食用鱼的近50%(《世界渔业和水产养殖状况粮农组织》,粮农组织,罗马)。全球食用鱼的水产养殖产量在2011年达到6270万吨,并持续增长,2012年食用鱼的估计产量为6650万吨(粮农组织,一年内增长9.4%)。水产养殖不仅对可持续的以蛋白质为基础的食用鱼生产至关重要,而且对全世界的水产养殖业和经济也很重要。疾病预防是维持水产养殖业可持续发展的关键问题。水产养殖中抗生素的广泛使用已导致产生抗药性细菌以及环境中抗生素的积累,从而导致水和土壤污染。因此,接种疫苗是防治水产养殖疾病以管理鱼类健康的最有效,最环保的方法。此外,与针对人类疾病的760多种疫苗相比,只有大约30种鱼疫苗在市场上有售,这表明迫切需要开发和经济有效地生产鱼疫苗来管理鱼类健康,特别是在亚洲快速发展的鱼类养殖中利润微乎其微,因此被赋予最高优先级在过去的三十年中,植物基因工程为食品,饲料,有价值的重组蛋白等转基因作物的生产做出了重大贡献。将植物用于疫苗生产具有许多优点,例如低成本,安全性和易于扩大规模。迄今为止,已经生产了许多植物衍生的疫苗,抗体和治疗性蛋白质以促进人类健康,其中一些已经商业化。然而,尚未解决通过基因工程开发植物中的动物疫苗,特别是鱼类疫苗的问题。因此,需要开发植物生物技术以在植物,特别是用于口服鱼疫苗的可食用作物中开发具有成本效益的鱼疫苗。这篇综述提供了以下方面的见解:(1)水产养殖中鱼疫苗和疫苗的现状;(2)口服鱼疫苗的植物生物技术和食用作物;(3)监管限制;(4)结论和未来展望。

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