TIS21 (/BTG2/PC3) as a link between ageing and cancer: cell cycle regulator and endogenous cell death molecule

In Kyoung Lim1

  • 1Department of Biochemistry and Molecular Biology, Ajou University School of Medicine, Suwon 443-721, Korea. iklim@ajou.ac.kr

Insights

TIS21 (also known as BTG2/PC3) is an antiproliferative gene that acts as a tumor suppressor by regulating cell cycle and promoting cell death. Its loss is linked to early carcinogenesis, but it may also connect cellular senescence and cancer resistance.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Cancer Research

Background:

  • TIS21 (also known as BTG2/PC3) is an antiproliferative gene identified as an early growth response gene.
  • It possesses highly conserved BTG-Box A and BTG-Box B domains, crucial for its function.
  • TIS21 is constitutively expressed in specific tissues like the thymus, lung, kidney, and prostate.

Purpose of the Study:

  • To review the multifaceted roles of TIS21, including its function as a tumor suppressor and cell cycle regulator.
  • To explore TIS21's involvement in carcinogenesis, cell cycle transitions, and embryonic development.
  • To elucidate TIS21's potential link between cellular senescence and cancer resistance.

Main Methods:

  • Review of existing literature on TIS21 function and expression.
  • Analysis of TIS21's interactions with proteins like Pin-1, pRB, p53, Smad 1, and Smad 8.
  • Examination of TIS21's regulatory pathways, including PKC-delta and EGF signaling.

Main Results:

  • TIS21 inhibits early carcinogenesis in high-expressing tissues; its loss is observed in precancerous and tumor tissues.
  • TIS21 acts as a pan-cell cycle regulator, inducing G1/S and G2/M arrest and promoting cell death.
  • TIS21 regulates embryonic development by activating BMP signaling and is involved in vertebrate patterning.

Conclusions:

  • TIS21 functions as an endogenous cell death molecule and pan-cell cycle regulator, inhibiting carcinogenesis.
  • TIS21's regulation of cell cycle transitions is dependent on pRB and p53 pathways, and it can induce G2/M arrest independently.
  • TIS21's role in cellular senescence suggests a potential mechanism for resisting carcinogenesis.

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