Lai Xin, Luan Chunyan, Zhang Zhesi, Wessely Anja, Heppt Markus V, Berking Carola, Vera Julio
Biomedicine Unit, Faculty of Medicine and Health Technology, Tampere University, Tampere, Finland.
TAYS Cancer Centre, Tampere University Hospital, Wellbeing Services County of Pirkanmaa, Tampere, Finland.
Int J Cancer. 2025 Oct 1;157(7):1277-1293. doi: 10.1002/ijc.35499. Epub 2025 Jun 3.
Recent studies show that the dysregulation of the transcription factor SOX10 is essential for the development and progression of melanoma. MicroRNAs (miRNAs) can regulate the expression of transcription factors at the post-transcriptional level. The interactions between SOX10 and its targeting miRNAs form network motifs such as feedforward and feedback loops. Such motifs can result in nonlinear dynamics in gene expression levels, therefore playing a crucial role in regulating tumor proliferation and metastasis as well as the tumor's responses to therapies. Here, we reviewed and discussed the intricate interplay between SOX10 and miRNAs in melanoma biology including melanogenesis, phenotype switch, and therapy resistance. Additionally, we investigated the gene regulatory interactions in melanoma, identifying crucial network motifs that involve SOX10, MITF, and miRNAs. We also analyzed the expression levels of the components within these motifs. From a control theory perspective, we explained how these dynamics are linked to the phenotypic plasticity of melanoma cells. In summary, we underscored the importance of employing a data-driven network biology approach to elucidate the complex regulatory mechanisms and identify driver network motifs within the melanoma network. This methodology facilitates a deeper understanding of the regulation of SOX10 and MITF by miRNAs in melanoma. The insight gained could potentially contribute to the development of miRNA-based treatments, thereby enhancing the clinical management of this malignancy.
最近的研究表明,转录因子SOX10的失调对于黑色素瘤的发生和发展至关重要。微小RNA(miRNA)可以在转录后水平调节转录因子的表达。SOX10与其靶向miRNA之间的相互作用形成了前馈和反馈环等网络基序。这些基序可导致基因表达水平出现非线性动态变化,因此在调节肿瘤增殖和转移以及肿瘤对治疗的反应中发挥关键作用。在此,我们回顾并讨论了SOX10与miRNA在黑色素瘤生物学(包括黑素生成、表型转换和治疗抗性)中的复杂相互作用。此外,我们研究了黑色素瘤中的基因调控相互作用,确定了涉及SOX10、MITF和miRNA的关键网络基序。我们还分析了这些基序内各成分的表达水平。从控制理论的角度,我们解释了这些动态变化如何与黑色素瘤细胞的表型可塑性相关联。总之,我们强调了采用数据驱动的网络生物学方法来阐明复杂调控机制并识别黑色素瘤网络中驱动网络基序的重要性。这种方法有助于更深入地理解miRNA对黑色素瘤中SOX10和MITF的调控。所获得的见解可能有助于开发基于miRNA的治疗方法,从而加强对这种恶性肿瘤的临床管理。