网络生物融合:系统审查和未来展望
Mariam Elgabry1,2, Shane Johnson1
1DAWES Center for Future Crime at UCL, Jill Dando Institute for Security and Crime Science, London, United Kingdom.
Frontiers in bioengineering and biotechnology
|October 9, 2024
概括
工程生物学,即生物系统的编程,既提供了网络机会,也带来了网络威胁. 本次审查确定了7个机会和4个威胁,提出了4个网络生物安全解决方案和9个安全生物经济的政策建议.
科学领域:
- 网络安全和合成生物学
- 在计算机科学和生物工程交叉的跨学科研究.
背景情况:
- 工程生物学类似于计算机编程,利用数字基础设施来操纵生物系统.
- 与传统软件不同,生物系统具有自我组装,自我修复和自我复制的能力,引入了独特的风险.
- 工程生物学日益融入网络空间,需要对其网络影响进行彻底审查.
研究的目的:
- 系统地审查工程生物学的网络影响.
- 识别和分类网络生物机遇和威胁.
- 探索现有的网络生物安全解决方案,并提出政策建议.
主要方法:
- 2017年至2022年10月期间发表的学术,开源和灰色文学的系统文献搜索.
- 利用搜索引擎对信息安全,生物学和其他学科的60多个数据库进行索引.
- 分析了52项相关研究,重点关注工程生物学对网络空间的影响.
主要成果:
- 确定了7个网络机会,包括自动化生物造厂.
- 确定了4个网络威胁,例如人工智能滥用和生物数据集准.
- 突出了4种主要的网络生物安全解决方案,并提出了9项政策建议.
结论:
- 工程生物学带来了重要的网络风险和机会,需要主动管理.
- 制定强有力的网络生物安全措施和政策对于安全和繁荣的生物经济至关重要.
- 持续的研究和合作对于应对不断变化的网络生物环境至关重要.
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