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丝虫属线虫中的性别相关基因对繁殖很重要,也是潜在的干预靶点。

Gender-associated genes in filarial nematodes are important for reproduction and potential intervention targets.

机构信息

Infectious Diseases Division, Washington University School of Medicine, St. Louis, Missouri, United States of America.

出版信息

PLoS Negl Trop Dis. 2011 Jan 25;5(1):e947. doi: 10.1371/journal.pntd.0000947.

Abstract

BACKGROUND

A better understanding of reproductive processes in parasitic nematodes may lead to development of new anthelmintics and control strategies for combating disabling and disfiguring neglected tropical diseases such as lymphatic filariasis and onchocerciasis. Transcriptomatic analysis has provided important new insights into mechanisms of reproduction and development in other invertebrates. We have performed the first genome-wide analysis of gender-associated (GA) gene expression in a filarial nematode to improve understanding of key reproductive processes in these parasites.

METHODOLOGY/PRINCIPAL FINDINGS: The Version 2 Filarial Microarray with 18,104 elements representing ∼85% of the filarial genome was used to identify GA gene transcripts in adult Brugia malayi worms. Approximately 19% of 14,293 genes were identified as GA genes. Many GA genes have potential Caenorhabditis elegans homologues annotated as germline-, oogenesis-, spermatogenesis-, and early embryogenesis- enriched. The potential C. elegans homologues of the filarial GA genes have a higher frequency of severe RNAi phenotypes (such as lethal and sterility) than other C. elegans genes. Molecular functions and biological processes associated with GA genes were gender-segregated. Peptidase, ligase, transferase, regulator activity for kinase and transcription, and rRNA and lipid binding were associated with female GA genes. In contrast, catalytic activity from kinase, ATP, and carbohydrate binding were associated with male GA genes. Cell cycle, transcription, translation, and biological regulation were increased in females, whereas metabolic processes of phosphate and carbohydrate metabolism, energy generation, and cell communication were increased in males. Significantly enriched pathways in females were associated with cell growth and protein synthesis, whereas metabolic pathways such as pentose phosphate and energy production pathways were enriched in males. There were also striking gender differences in environmental information processing and cell communication pathways. Many proteins encoded by GA genes are secreted by Brugia malayi, and these encode immunomodulatory molecules such as antioxidants and host cytokine mimics. Expression of many GA genes has been recently reported to be suppressed by tetracycline, which blocks reproduction in female Brugia malayi. Our localization of GA transcripts in filarial reproductive organs supports the hypothesis that these genes encode proteins involved in reproduction.

CONCLUSIONS/SIGNIFICANCE: Genome-wide expression profiling coupled with a robust bioinformatics analysis has greatly expanded our understanding of the molecular biology of reproduction in filarial nematodes. This study has highlighted key molecules and pathways associated with reproductive and other biological processes and identified numerous potential candidates for rational drug design to target reproductive processes.

摘要

背景

更好地了解寄生线虫的生殖过程可能会导致新的驱虫药和控制策略的发展,以对抗诸如淋巴丝虫病和盘尾丝虫病等被忽视的热带病,这些疾病会使人致残和毁容。转录组分析为其他无脊椎动物的生殖和发育机制提供了重要的新见解。我们对丝虫进行了首次全基因组性别相关(GA)基因表达分析,以提高对这些寄生虫关键生殖过程的理解。

方法/主要发现:使用代表丝虫基因组约 85%的第 2 版丝虫微阵列(18,104 个元件)来鉴定成年马来布鲁线虫中的 GA 基因转录本。大约 19%的 14,293 个基因被鉴定为 GA 基因。许多 GA 基因具有潜在的秀丽隐杆线虫同源物,注释为生殖细胞、卵子发生、精子发生和早期胚胎发生富集。丝虫 GA 基因的潜在秀丽隐杆线虫同源物具有更高频率的严重 RNAi 表型(如致死和不育)比其他秀丽隐杆线虫基因。与 GA 基因相关的分子功能和生物学过程是性别分离的。与女性 GA 基因相关的是肽酶、连接酶、转移酶、激酶和转录调节剂活性以及 rRNA 和脂质结合。相比之下,与男性 GA 基因相关的是激酶、ATP 和碳水化合物结合的催化活性。细胞周期、转录、翻译和生物调节在雌性中增加,而磷酸和碳水化合物代谢、能量产生和细胞通讯等代谢过程在雄性中增加。女性中显著富集的途径与细胞生长和蛋白质合成有关,而男性中则富集代谢途径,如戊糖磷酸和能量产生途径。在环境信息处理和细胞通讯途径中也存在明显的性别差异。许多由 GA 基因编码的蛋白质由马来布鲁线虫分泌,这些蛋白质编码免疫调节分子,如抗氧化剂和宿主细胞因子模拟物。最近有报道称,许多 GA 基因的表达被四环素抑制,四环素会阻断雌性布鲁线虫的生殖。我们在丝虫生殖器官中定位 GA 转录本支持了这样的假设,即这些基因编码参与生殖的蛋白质。

结论/意义:全基因组表达谱分析结合强大的生物信息学分析极大地扩展了我们对丝虫生殖生物学的理解。这项研究突出了与生殖和其他生物学过程相关的关键分子和途径,并确定了许多潜在的候选药物设计,以针对生殖过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2237/3026763/ccd9c08c8d2f/pntd.0000947.g001.jpg

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