TY - JOUR
T1 - MicroRNA-101-3p Modulates Mitochondrial Metabolism via the Regulation of Complex II Assembly
AU - Ziemann, Mark
AU - Lim, Sze Chern
AU - Kang, Yilin
AU - Samuel, Sona
AU - Sanchez, Isabel Lopez
AU - Gantier, Michael
AU - Stojanovski, Diana
AU - McKenzie, Matthew
N1 - Funding Information:
This research was funded by Deakin University (M.McK.), the Australian Mito Foundation (I.L.S.), and supported by the use of the Nectar Research Cloud, a collaborative Australian research platform sponsored by the NCRIS-funded Australian Research Data Commons (ARDC). The authors also wish to acknowledge the use of the services and facilities of Australian Genome Research Facility (AGRF). Hudson Institute of Medical Research and the Centre for Eye Research Australia receive operational infrastructure support from the Victorian Government.
Publisher Copyright:
© 2021 Elsevier Ltd
PY - 2022/1/30
Y1 - 2022/1/30
N2 - MicroRNA-101-3p (miR-101-3p) is a tumour suppressor that regulates cancer proliferation and apoptotic signalling. Loss of miR-101-3p increases the expression of the Polycomb Repressive Complex 2 (PRC2) subunit enhancer of zeste homolog 2 (EZH2), resulting in alterations to the epigenome and enhanced tumorigenesis. MiR-101-3p has also been shown to modulate various aspects of cellular metabolism, however little is known about the mechanisms involved. To investigate the metabolic pathways that are regulated by miR-101-3p, we performed transcriptome and functional analyses of osteosarcoma cells transfected with miR-101-3p. We found that miR-101-3p downregulates multiple mitochondrial processes, including oxidative phosphorylation, pyruvate metabolism, the citric acid cycle and phospholipid metabolism. We also found that miR-101-3p transfection disrupts the transcription of mitochondrial DNA (mtDNA) via the downregulation of the mitochondrial transcription initiation complex proteins TFB2M and Mic60. These alterations in transcript expression disrupt mitochondrial function, with significant decreases in both basal (54%) and maximal (67%) mitochondrial respiration rates. Native gel electrophoresis revealed that this diminished respiratory capacity was associated with reduced steady-state levels of mature succinate dehydrogenase (complex II), with a corresponding reduction of complex II enzymatic activity. Furthermore, miR-101-3p transfection reduced the expression of the SDHB subunit, with a concomitant disruption of the assembly of the SDHC subunit into mature complex II. Overall, we describe a new role for miR-101-3p as a modulator of mitochondrial metabolism via its regulation of multiple mitochondrial processes, including mtDNA transcription and complex II biogenesis.
AB - MicroRNA-101-3p (miR-101-3p) is a tumour suppressor that regulates cancer proliferation and apoptotic signalling. Loss of miR-101-3p increases the expression of the Polycomb Repressive Complex 2 (PRC2) subunit enhancer of zeste homolog 2 (EZH2), resulting in alterations to the epigenome and enhanced tumorigenesis. MiR-101-3p has also been shown to modulate various aspects of cellular metabolism, however little is known about the mechanisms involved. To investigate the metabolic pathways that are regulated by miR-101-3p, we performed transcriptome and functional analyses of osteosarcoma cells transfected with miR-101-3p. We found that miR-101-3p downregulates multiple mitochondrial processes, including oxidative phosphorylation, pyruvate metabolism, the citric acid cycle and phospholipid metabolism. We also found that miR-101-3p transfection disrupts the transcription of mitochondrial DNA (mtDNA) via the downregulation of the mitochondrial transcription initiation complex proteins TFB2M and Mic60. These alterations in transcript expression disrupt mitochondrial function, with significant decreases in both basal (54%) and maximal (67%) mitochondrial respiration rates. Native gel electrophoresis revealed that this diminished respiratory capacity was associated with reduced steady-state levels of mature succinate dehydrogenase (complex II), with a corresponding reduction of complex II enzymatic activity. Furthermore, miR-101-3p transfection reduced the expression of the SDHB subunit, with a concomitant disruption of the assembly of the SDHC subunit into mature complex II. Overall, we describe a new role for miR-101-3p as a modulator of mitochondrial metabolism via its regulation of multiple mitochondrial processes, including mtDNA transcription and complex II biogenesis.
KW - cancer metabolism
KW - complex II biogenesis
KW - microRNA-101
KW - mtDNA transcription
KW - oxidative phosphorylation
UR - https://www.scopus.com/pages/publications/85119853945
U2 - 10.1016/j.jmb.2021.167361
DO - 10.1016/j.jmb.2021.167361
M3 - Article
C2 - 34808225
AN - SCOPUS:85119853945
SN - 0022-2836
VL - 434
JO - Journal of Molecular Biology
JF - Journal of Molecular Biology
IS - 2
M1 - 167361
ER -