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February 28, 2026Mitochondrion0 citations

TNF-α-mediated down-regulation of mitochondrial transcription factors: Rescue by Angiotensin-(1–7) peptide

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BNBhargavi NatarajanAVAnupama VijayakumarDIDhanya R. Iyer

Key Result

Angiotensin-(1-7) reversed TNF-α-mediated repression of mitochondrial transcription factors in cardiomyoblasts by restoring the PGC-1α-YY1 transcriptional complex.

Key Points

  • This research aims to uncover how TNF-α impacts mitochondrial transcription factors in heart cells and the potential rescue by Angiotensin-(1-7).
  • Compared mtTF expression in left ventricles of spontaneously hypertensive rats and normotensive Wistar Kyoto rats.
  • Examined the effects of TNF-α on H9c2 cardiomyoblast cells in vitro.
  • Investigated the role of the PGC-1α-YY1 complex in regulating mtTF expression.
  • mtTF expression was significantly lower in spontaneously hypertensive rats compared to normotensive ones.
  • TNF-α effectively reduced mtTF levels in H9c2 cells.
  • Ang-(1-7) treatment restored mtTF expression by promoting the formation of the PGC-1α-YY1 complex.

Structured PICO

P
Population
Spontaneously hypertensive rats (SHR) and H9c2 cardiomyoblasts
I
Intervention
Angiotensin-(1-7) peptide [Ang-(1-7)]
C
Comparator
Normotensive Wistar Kyoto rats (WKY) (in vivo) and TNF-ɑ alone (in vitro)
O
Outcome
Expression of mitochondrial transcription factors (Tfam, Tfb1m, Tfb2m) and PGC-1ɑ-YY1 complex formationsurrogate

Ang-(1-7) acts as a regulator of cardiac mitochondrial biogenesis under inflammatory conditions by restoring PGC-1ɑ-YY1 complex formation.

Abstract

Manifesting initially as a physiological adaptation to pressure/volume overload, cardiac hypertrophy helps to maintain normal cardiac output via optimal mitochondrial function. However, chronic hypertension leads to pathological cardiac hypertrophy that is characterized by compromised cardiac output and mitochondrial dysfunction. Against this backdrop, we sought to delineate the molecular mechanisms underlying the regulation of mitochondrial transcription factors (mTFs; viz. Tfam, Tfb1m and Tfb2m which play a pivotal role in maintaining mitochondrial homeostasis) in cardiomyocytes. We show that the expression of mtTFs is repressed in the left ventricle of spontaneously hypertensive rats (SHR) as compared to normotensive Wistar Kyoto rats (WKY). In line with these findings, TNF-ɑ diminished the expression of mtTFs in H9c2 cardiomyoblasts. Ang-(1-7), an anti-inflammatory and anti-hypertensive peptide, reversed these effects of TNF-ɑ in vitro. We show that PGC-1ɑ-YY1 transcriptional complex acts as a molecular switch to modulate the expression of mtTFs. While TNF-ɑ prevents the formation of PGC-1ɑ-YY1 complex and promotes transcriptional repression of mtTFs mediated by YY1, Ang-(1-7) restores the complex formation, causing transcriptional activation of mtTFs. Thus, Ang-(1-7) emerges as an important regulator of cardiac mitochondrial biogenesis under inflammatory conditions.

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Cite This Study

Natarajan et al. (2026) studied Cardiac hypertrophy and hypertension. Angiotensin-(1-7) peptide vs. TNF-alpha / Normotensive Wistar Kyoto rats was evaluated on Expression of mitochondrial transcription factors (Tfam, Tfb1m, Tfb2m). Angiotensin-(1-7) reversed TNF-α-mediated repression of mitochondrial transcription factors in cardiomyoblasts by restoring the PGC-1α-YY1 transcriptional complex.

synapsesocial.com/papers/6a025a549cddff7633412b57https://doi.org/10.1016/j.mito.2026.102130
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