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Exploiting Multi-Omics Profiling and Systems Biology to Investigate Functions of TOMM34.
Poverennaya, Ekaterina V; Pyatnitskiy, Mikhail A; Dolgalev, Georgii V; Arzumanian, Viktoria A; Kiseleva, Olga I; Kurbatov, Ilya Yu; Kurbatov, Leonid K; Vakhrushev, Igor V; Romashin, Daniil D; Kim, Yan S; Ponomarenko, Elena A.
Affiliation
  • Poverennaya EV; Institute of Biomedical Chemistry, Moscow 119121, Russia.
  • Pyatnitskiy MA; Institute of Biomedical Chemistry, Moscow 119121, Russia.
  • Dolgalev GV; Faculty Of Computer Science, National Research University Higher School of Economics, Moscow 101000, Russia.
  • Arzumanian VA; Institute of Biomedical Chemistry, Moscow 119121, Russia.
  • Kiseleva OI; Institute of Biomedical Chemistry, Moscow 119121, Russia.
  • Kurbatov IY; Institute of Biomedical Chemistry, Moscow 119121, Russia.
  • Kurbatov LK; Institute of Biomedical Chemistry, Moscow 119121, Russia.
  • Vakhrushev IV; Institute of Biomedical Chemistry, Moscow 119121, Russia.
  • Romashin DD; Institute of Biomedical Chemistry, Moscow 119121, Russia.
  • Kim YS; Institute of Biomedical Chemistry, Moscow 119121, Russia.
  • Ponomarenko EA; Institute of Biomedical Chemistry, Moscow 119121, Russia.
Biology (Basel) ; 12(2)2023 Jan 28.
Article in En | MEDLINE | ID: mdl-36829477
ABSTRACT
Although modern biology is now in the post-genomic era with vastly increased access to high-quality data, the set of human genes with a known function remains far from complete. This is especially true for hundreds of mitochondria-associated genes, which are under-characterized and lack clear functional annotation. However, with the advent of multi-omics profiling methods coupled with systems biology algorithms, the cellular role of many such genes can be elucidated. Here, we report genes and pathways associated with TOMM34, Translocase of Outer Mitochondrial Membrane, which plays role in the mitochondrial protein import as a part of cytosolic complex together with Hsp70/Hsp90 and is upregulated in various cancers. We identified genes, proteins, and metabolites altered in TOMM34-/- HepG2 cells. To our knowledge, this is the first attempt to study the functional capacity of TOMM34 using a multi-omics strategy. We demonstrate that TOMM34 affects various processes including oxidative phosphorylation, citric acid cycle, metabolism of purine, and several amino acids. Besides the analysis of already known pathways, we utilized de novo network enrichment algorithm to extract novel perturbed subnetworks, thus obtaining evidence that TOMM34 potentially plays role in several other cellular processes, including NOTCH-, MAPK-, and STAT3-signaling. Collectively, our findings provide new insights into TOMM34's cellular functions.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies Language: En Journal: Biology (Basel) Year: 2023 Document type: Article Affiliation country:

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies Language: En Journal: Biology (Basel) Year: 2023 Document type: Article Affiliation country:
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