Antiproliferative pharmacophore azo-hydrazone analogue BT-1F exerts death signalling pathway targeting STAT3 in solid

Banumathi1, Ankith Sherapura1, Vikas H Malojirao1,2

  • 1Molecular Biomedicine Laboratory, Postgraduate Department of Studies and Research in Biotechnology, Sahyadri Science College, Kuvempu University, Shivamogga, Karnataka, 577203, India.

Abstract

Insights

The novel drug BT-1F effectively targets STAT3 signaling in solid tumors, inducing apoptosis and inhibiting cancer cell proliferation. This STAT3 inhibitor shows promise as a new cancer therapy.

Area of Science:

  • Oncology
  • Molecular Biology
  • Drug Discovery

Background:

  • Anomalous intracellular signaling cascades, particularly involving JAK2/STAT3 proteins, drive neoplastic properties in solid malignancies.
  • STAT3 overexpression in tumors promotes tumor development by enabling evasion of apoptosis.
  • Targeting STAT3 is an emerging strategy for cancer treatment.

Purpose of the Study:

  • To evaluate the anti-neoplastic potential of the azo-hydrozone analogue, BT-1F, as a STAT3 signaling inhibitor.
  • To elucidate the mechanism of action of BT-1F in counteracting STAT3 signaling and its effect on tumor growth.

Main Methods:

  • In vitro cytotoxicity assays (MTT, LDH, Trypan blue) and anti-clonogenic assays were performed.
  • Apoptosis induction was assessed using various staining and flow cytometry techniques (crystal violet, Annexin-FITC, DAPI, TUNEL).
  • Signaling pathway alterations were studied via immunoblotting, and in vivo anti-tumor effects were evaluated in a solid tumor model, with in silico studies validating molecular interactions.

Main Results:

  • BT-1F demonstrated chemo-sensitivity specifically against EAC and A549 cancer cells, sparing normal cells.
  • The anti-proliferative and anti-clonogenic effects were attributed to apoptosis induction via inhibition of STAT3 phosphorylation at Tyr705.
  • Downstream signaling proteins (p53, Bax, Bad, Bcl-xL) were significantly altered, and in vivo and in silico studies confirmed BT-1F's efficacy and binding affinity to STAT3.

Conclusions:

  • BT-1F exhibits promising anti-cancer activity through STAT3 inhibition.
  • Systemic validation across in vitro, in silico, and in vivo models supports BT-1F as a potential therapeutic strategy for solid cancers.

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