Characterization of TNNC1 as a Novel Tumor Suppressor of Lung Adenocarcinoma.
Suyeon KimJaewon KimYeonjoo JungYukyung JunYeonhwa JungHee-Young LeeJuhee KeumByung Jo ParkJinseon LeeJhingook KimSanghyuk LeeJaesang KimPublished in: Molecules and cells (2021)
In this study, we describe a novel function of TNNC1 (Troponin C1, Slow Skeletal and Cardiac Type), a component of actin-bound troponin, as a tumor suppressor of lung adenocarcinoma (LUAD). First, the expression of TNNC1 was strongly down-regulated in cancer tissues compared to matched normal lung tissues, and down-regulation of TNNC1 was shown to be strongly correlated with increased mortality among LUAD patients. Interestingly, TNNC1 expression was enhanced by suppression of KRAS, and ectopic expression of TNNC1 in turn inhibited KRASG12D-mediated anchorage independent growth of NIH3T3 cells. Consistently, activation of KRAS pathway in LUAD patients was shown to be strongly correlated with down-regulation of TNNC1. In addition, ectopic expression of TNNC1 inhibited colony formation of multiple LUAD cell lines and induced DNA damage, cell cycle arrest and ultimately apoptosis. We further examined potential correlations between expression levels of TNNC1 and various clinical parameters and found that low-level expression is significantly associated with invasiveness of the tumor. Indeed, RNA interference-mediated down-regulation of TNNC1 led to significant enhancement of invasiveness in vitro. Collectively, our data indicate that TNNC1 has a novel function as a tumor suppressor and is targeted for down-regulation by KRAS pathway during the carcinogenesis of LUAD.
Keyphrases
- poor prognosis
- end stage renal disease
- dna damage
- chronic kidney disease
- cell cycle arrest
- binding protein
- ejection fraction
- oxidative stress
- newly diagnosed
- long non coding rna
- gene expression
- cardiovascular disease
- cell death
- type diabetes
- peritoneal dialysis
- drug delivery
- transcription factor
- endoplasmic reticulum stress
- machine learning
- signaling pathway
- artificial intelligence
- high glucose
- deep learning
- papillary thyroid
- human health
- quantum dots
- wild type