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通过 RNA-seq 对聚乙烯上生长的红球菌 R7 的转录组分析。

Transcriptomic analysis of Rhodococcus opacus R7 grown on polyethylene by RNA-seq.

机构信息

Department of Biotechnology and Biosciences, University of Milano-Bicocca, Piazza della Scienza 2, 20126, Milan, Italy.

Institute of Biomedical Technologies, National Research Council, CNR, via Fratelli Cervi 19, Segrate, 20133, Milan, Italy.

出版信息

Sci Rep. 2021 Oct 29;11(1):21311. doi: 10.1038/s41598-021-00525-x.

Abstract

Plastic waste management has become a global issue. Polyethylene (PE) is the most abundant synthetic plastic worldwide, and one of the most resistant to biodegradation. Indeed, few bacteria can degrade polyethylene. In this paper, the transcriptomic analysis unveiled for the first time Rhodococcus opacus R7 complex genetic system based on diverse oxidoreductases for polyethylene biodegradation. The RNA-seq allowed uncovering genes putatively involved in the first step of oxidation. In-depth investigations through preliminary bioinformatic analyses and enzymatic assays on the supernatant of R7 grown in the presence of PE confirmed the activation of genes encoding laccase-like enzymes. Moreover, the transcriptomic data allowed identifying candidate genes for the further steps of short aliphatic chain oxidation including alkB gene encoding an alkane monooxygenase, cyp450 gene encoding cytochrome P450 hydroxylase, and genes encoding membrane transporters. The PE biodegradative system was also validated by FTIR analysis on R7 cells grown on polyethylene.

摘要

塑料废物管理已成为全球性问题。聚乙烯(PE)是全球最丰富的合成塑料,也是最难生物降解的塑料之一。实际上,很少有细菌能够降解聚乙烯。在本文中,首次通过转录组分析揭示了基于各种氧化还原酶的聚乙烯生物降解的罗德里格斯氏菌 R7 复杂遗传系统。RNA-seq 揭示了可能参与氧化第一步的基因。通过对 R7 在 PE 存在下生长的上清液进行初步生物信息学分析和酶分析的深入研究,证实了编码漆酶样酶的基因被激活。此外,转录组数据还鉴定了参与进一步短链烷烃氧化步骤的候选基因,包括编码烷烃单加氧酶的 alkB 基因、编码细胞色素 P450 羟化酶的 cyp450 基因以及编码膜转运体的基因。通过对在聚乙烯上生长的 R7 细胞进行傅里叶变换红外(FTIR)分析,也验证了 PE 的生物降解系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/62e6/8556283/d44e8c0fc081/41598_2021_525_Fig1_HTML.jpg

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