Boti Michaela A, Adamopoulos Panagiotis G, Vassilacopoulou Dido, Scorilas Andreas
Department of Biochemistry and Molecular Biology, Faculty of Biology, National and Kapodistrian University of Athens, Athens, Greece.
Curr Genomics. 2023 Dec 12;24(4):250-262. doi: 10.2174/0113892029265367231013113304.
Phosphatase and tensin homolog, widely known as PTEN, is a major negative regulator of the PI3K/AKT/mTOR signaling pathway, involved in the regulation of a variety of important cellular processes, including cell proliferation, growth, survival, and metabolism. Since most of the molecules involved in this biological pathway have been described as key regulators in cancer, the study of the corresponding genes at several levels is crucial.
Although previous studies have elucidated the physiological role of PTEN under normal conditions and its involvement in carcinogenesis and cancer progression, the transcriptional profile of PTEN has been poorly investigated.
In this study, instead of conducting the "gold-standard" direct RNA sequencing that fails to detect less abundant novel mRNAs due to the decreased sequencing depth, we designed and implemented a multiplexed PTEN-targeted sequencing approach that combined both short- and long-read sequencing.
Our study has highlighted a broad spectrum of previously unknown PTEN mRNA transcripts and assessed their expression patterns in a wide range of human cancer and non-cancer cell lines, shedding light on the involvement of PTEN in cell cycle dysregulation and thus tumor development.
The identification of the described novel PTEN splice variants could have significant implications for understanding PTEN regulation and function, and provide new insights into PTEN biology, opening new avenues for monitoring PTEN-related diseases, including cancer.
磷酸酶和张力蛋白同源物,广为人知的是PTEN,是PI3K/AKT/mTOR信号通路的主要负调控因子,参与多种重要细胞过程的调控,包括细胞增殖、生长、存活和代谢。由于该生物途径中涉及的大多数分子已被描述为癌症中的关键调控因子,在多个层面研究相应基因至关重要。
尽管先前的研究已经阐明了PTEN在正常条件下的生理作用及其在致癌作用和癌症进展中的参与情况,但对PTEN的转录谱研究较少。
在本研究中,我们没有采用因测序深度降低而无法检测到丰度较低的新mRNA的“金标准”直接RNA测序,而是设计并实施了一种多重PTEN靶向测序方法,该方法结合了短读长和长读长测序。
我们的研究突出了广泛的先前未知的PTEN mRNA转录本,并评估了它们在多种人类癌症和非癌细胞系中的表达模式,揭示了PTEN在细胞周期失调以及肿瘤发生中的作用。
所描述的新型PTEN剪接变体的鉴定可能对理解PTEN的调控和功能具有重要意义,并为PTEN生物学提供新的见解,为监测包括癌症在内的PTEN相关疾病开辟新途径。