MicroRNA circuits and regulatory networks: emerging therapeutic paradigm

MicroRNAs (miRNAs) are small non-coding RNAs whose function is to regulate gene expression post-transcriptionally. Transcription factors (TFs) are the DNA-binding proteins responsible for activation or repression of a gene. Together, miRNAs and TFs form regulatory networks that modulate cellular homeostasis. In these regulatory networks, these TFs often regulate the expression of miRNAs, and in turn, miRNAs regulate the expression of TFs, thus forming feedback and feedforward loops. These loops and regulatory networks allow precise control over gene expression patterns by enabling accurate signal processing. Utilizing mathematical modelling and machine learning approaches helps understand the global structure of these networks. These reveal cellular fate selection, stress adaptation, disease development, and gaining insights into these interconnected regulatory systems opens new prospects for novel biomarker discovery and therapeutic approaches in a variety of disciplines, including cancer and immunotherapy.

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Publication Details

Journal
RNA Biology
Published
2026-09-25
DOI
https://doi.org/10.1080/15476286.2026.2731890
Primary Topic
MicroRNA in disease regulation
Type
article
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article

MicroRNA circuits and regulatory networks: emerging therapeutic paradigm

Shailza Singh, Swati Goswami
RNA Biology
MicroRNA in disease regulation
article

MicroRNA circuits and regulatory networks: emerging therapeutic paradigm

Shailza Singh, Swati Goswami
article en

Abstract

MicroRNAs (miRNAs) are small non-coding RNAs whose function is to regulate gene expression post-transcriptionally. Transcription factors (TFs) are the DNA-binding proteins responsible for activation or repression of a gene. Together, miRNAs and TFs form regulatory networks that modulate cellular homeostasis. In these regulatory networks, these TFs often regulate the expression of miRNAs, and in turn, miRNAs regulate the expression of TFs, thus forming feedback and feedforward loops. These loops and regulatory networks allow precise control over gene expression patterns by enabling accurate signal processing. Utilizing mathematical modelling and machine learning approaches helps understand the global structure of these networks. These reveal cellular fate selection, stress adaptation, disease development, and gaining insights into these interconnected regulatory systems opens new prospects for novel biomarker discovery and therapeutic approaches in a variety of disciplines, including cancer and immunotherapy.

RNA BiologyVol. 23(1)
Regional Centre for Biotechnology (IN)
Openalex Percentile: Top 15%
MicroRNA in disease regulation
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MicroRNA circuits and regulatory networks: emerging therapeutic paradigm — Shailza Singh, Swati Goswami · RNA Biology (2026) | TGRS Research Map | TGRS