长读测序和广泛表达谱揭示了一种蘑菇形成真菌的形态发生、饥饿和光响应。

IF 11.1 Q1 CELL BIOLOGY
Cell genomics Pub Date : 2025-06-11 Epub Date: 2025-04-21 DOI:10.1016/j.xgen.2025.100853
Botond Hegedüs, Neha Sahu, Balázs Bálint, Sajeet Haridas, Viktória Bense, Zsolt Merényi, Máté Virágh, Hongli Wu, Xiao-Bin Liu, Robert Riley, Anna Lipzen, Maxim Koriabine, Emily Savage, Jie Guo, Kerrie Barry, Vivian Ng, Péter Urbán, Attila Gyenesei, Michael Freitag, Igor V Grigoriev, László G Nagy
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引用次数: 0

摘要

形成蘑菇的真菌(agar icomyetes)在科学和工业的几个领域正在成为关键的参与者。真菌的基因组数据正在迅速积累;然而,这并没有与基因注释的改进并行,这使得基因功能众所周知地难以理解。我们着手通过整合新的染色体水平组装,高质量的基因预测和来自广泛基因表达谱数据的功能信息,提高我们对模式蘑菇Coprinopsis cinerea的功能理解。新的注释包括5‘和3’非翻译区(UTRs)、聚腺苷化位点(PASs)、上游开放阅读框(uorf)、剪接异构体和微外显子,以及与碳饥饿、光响应和菌丝分化相对应的核心基因集。因此,C. cinerea基因组现已成为蘑菇形成真菌中最全面的基因组注释,这将有助于研究其生活史,光和应激反应以及多细胞发育等多个快速扩展的领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Morphogenesis, starvation, and light responses in a mushroom-forming fungus revealed by long-read sequencing and extensive expression profiling.

Mushroom-forming fungi (Agaricomycetes) are emerging as pivotal players in several fields of science and industry. Genomic data for Agaricomycetes are accumulating rapidly; however, this is not paralleled by improvements of gene annotations, which leave gene function notoriously poorly understood. We set out to improve our functional understanding of the model mushroom Coprinopsis cinerea by integrating a new, chromosome-level assembly, high-quality gene predictions, and functional information derived from broad gene-expression profiling data. The new annotation includes 5' and 3' untranslated regions (UTRs), polyadenylation sites (PASs), upstream open reading frames (uORFs), splicing isoforms, and microexons, as well as core gene sets corresponding to carbon starvation, light response, and hyphal differentiation. As a result, the genome of C. cinerea has now become the most comprehensively annotated genome among mushroom-forming fungi, which will contribute to multiple rapidly expanding fields, including research on their life history, light and stress responses, as well as multicellular development.

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