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黑腹果蝇基因组图谱和遗传操作,一种天然废物回收者。

Genomic landscape and genetic manipulation of the black soldier fly Hermetia illucens, a natural waste recycler.

机构信息

CAS Key Laboratory of Insect Developmental and Evolutionary Biology, CAS Center for Excellence in Molecular Plant Sciences, Institute of Plant Physiology and Ecology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai, 200032, China.

CAS Center for Excellence in Biotic Interactions, University of Chinese Academy of Sciences, Beijing, 100049, China.

出版信息

Cell Res. 2020 Jan;30(1):50-60. doi: 10.1038/s41422-019-0252-6. Epub 2019 Nov 25.

Abstract

The black soldier fly (BSF), Hermetia illucens (Diptera: Stratiomyidae), is renowned for its bioconversion of organic waste into a sustainable source of animal feed. We report a high-quality genome of 1.1 Gb and a consensus set of 16,770 gene models for this beneficial species. Compared to those of other dipteran species, the BSF genome has undergone a substantial expansion in functional modules related to septic adaptation, including immune system factors, olfactory receptors, and cytochrome P450s. We further profiled midgut transcriptomes and associated microbiomes of BSF larvae fed with representative types of organic waste. We find that the pathways related to digestive system and fighting infection are commonly enriched and that Firmicutes bacteria dominate the microbial community in BSF across all diets. To extend its potential practical applications, we further developed an efficient CRISPR/Cas9-based gene editing approach and implemented this to yield flightless and enhanced feeding capacity phenotypes, both of which could expand BSF production capabilities. Our study provides valuable genomic and technical resources for optimizing BSF lines for industrialization.

摘要

黑皮蠹(BSF),又称腐食酪螨(双翅目:Stratiomyidae),以其将有机废物生物转化为可持续动物饲料的能力而闻名。我们报告了该有益物种的 1.1GB 高质量基因组和 16770 个基因模型的共识集。与其他双翅目物种相比,BSF 基因组在与败血症适应相关的功能模块中经历了大量扩张,包括免疫系统因子、嗅觉受体和细胞色素 P450s。我们进一步分析了以代表性有机废物为食的 BSF 幼虫的中肠转录组和相关微生物组。我们发现与消化系统和抗感染相关的途径通常被富集,而厚壁菌门细菌在 BSF 所有饮食中都占据主导地位。为了扩大其潜在的实际应用,我们进一步开发了一种高效的基于 CRISPR/Cas9 的基因编辑方法,并实施了该方法,产生了无飞行和增强的摄食能力表型,这两者都可以扩大 BSF 的生产能力。我们的研究为优化 BSF 生产线以实现工业化提供了有价值的基因组和技术资源。

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