Biomolecular condensates in plant RNA silencing: insights into formation, function, and stress responses

Author:

Li Qi12ORCID,Liu Yang12ORCID,Zhang Xiaoming123ORCID

Affiliation:

1. State Key Laboratory of Integrated Management of Pest Insects and Rodents, Institute of Zoology, Chinese Academy of Sciences , Beijing , China

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

3. HainanYazhou Bay Seed Lab , Sanya , China

Abstract

Abstract Biomolecular condensates are dynamic structures formed through diverse mechanisms, including liquid-liquid phase separation. These condensates have emerged as crucial regulators of cellular processes in eukaryotic cells, enabling the compartmentalization of specific biological reactions while allowing for dynamic exchange of molecules with the surrounding environment. RNA silencing, a conserved gene regulatory mechanism mediated by small RNAs (sRNAs), plays pivotal roles in various biological processes. Multiple types of biomolecular condensate, including dicing bodies, processing bodies, small interfering RNA bodies, and Cajal bodies, have been identified as key players in RNA silencing pathways. These biomolecular condensates provide spatial compartmentation for the biogenesis, loading, action, and turnover of small RNAs. Moreover, they actively respond to stresses, such as viral infections, and modulate RNA silencing activities during stress responses. This review summarizes recent advances in understanding of dicing bodies and other biomolecular condensates involved in RNA silencing. We explore their formation, roles in RNA silencing, and contributions to antiviral resistance responses. This comprehensive overview provides insights into the functional significance of biomolecular condensates in RNA silencing and expands our understanding of their roles in gene expression and stress responses in plants.

Funder

National Key R&D Program of China

National Natural Science Foundation of China

Hainan Yazhou Bay Seed Lab

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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