Rinaldi Silvia, Moroni Elisabetta, Rozza Riccardo, Magistrato Alessandra
National Research Council of Italy (CNR) - Institute of Chemistry of OrganoMetallic Compounds (ICCOM), c/o Area di Ricerca CNR di Firenze Via Madonna del Piano 10, 50019 Sesto Fiorentino, Florence, Italy.
National Research Council of Italy (CNR) - Institute of Chemical Sciences and Technologies (SCITEC), via Mario Bianco 9, 20131 Milano, Italy.
J Chem Theory Comput. 2024 Feb 13;20(3):993-1018. doi: 10.1021/acs.jctc.3c01239. Epub 2024 Jan 30.
Non-coding RNAs (ncRNAs), generated from nonprotein coding DNA sequences, constitute 98-99% of the human genome. Non-coding RNAs encompass diverse functional classes, including microRNAs, small interfering RNAs, PIWI-interacting RNAs, small nuclear RNAs, small nucleolar RNAs, and long non-coding RNAs. With critical involvement in gene expression and regulation across various biological and physiopathological contexts, such as neuronal disorders, immune responses, cardiovascular diseases, and cancer, non-coding RNAs are emerging as disease biomarkers and therapeutic targets. In this review, after providing an overview of non-coding RNAs' role in cell homeostasis, we illustrate the potential and the challenges of state-of-the-art computational methods exploited to study non-coding RNAs biogenesis, function, and modulation. This can be done by directly targeting them with small molecules or by altering their expression by targeting the cellular engines underlying their biosynthesis. Drawing from applications, also taken from our work, we showcase the significance and role of computer simulations in uncovering fundamental facets of ncRNA mechanisms and modulation. This information may set the basis to advance gene modulation tools and therapeutic strategies to address unmet medical needs.
非编码RNA(ncRNAs)由非蛋白质编码DNA序列产生,占人类基因组的98 - 99%。非编码RNA包含多种功能类别,包括微小RNA、小干扰RNA、PIWI相互作用RNA、小核RNA、小核仁RNA和长链非编码RNA。非编码RNA在各种生物学和生理病理环境中,如神经疾病、免疫反应、心血管疾病和癌症,对基因表达和调控起着关键作用,正逐渐成为疾病生物标志物和治疗靶点。在本综述中,在概述非编码RNA在细胞稳态中的作用后,我们阐述了用于研究非编码RNA生物合成、功能和调控的前沿计算方法的潜力和挑战。这可以通过用小分子直接靶向它们,或通过靶向其生物合成的细胞机制来改变其表达来实现。从我们的工作中选取的应用实例出发,我们展示了计算机模拟在揭示ncRNA机制和调控的基本方面的重要性和作用。这些信息可为推进基因调控工具和治疗策略以满足未满足的医疗需求奠定基础。