Two isoforms of PSAP/MTCH1 share two proapoptotic domains and multiple internal signals for import into the

Violeta Lamarca1, Antonio Sanz-Clemente, Rosaura Pérez-Pé

  • 1Institute for Biocomputation and Physics of Complex Systems, University of Zaragoza, Corona de Aragón 42, Edificio Cervantes, 50009, Zaragoza, Spain.

Insights

Presenilin 1-associated protein (PSAP) has two isoforms that induce apoptosis. Its mitochondrial localization requires a specific transmembrane domain, influencing its proapoptotic function.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • Presenilin 1-associated protein (PSAP), also known as mitochondrial carrier homolog 1 (Mtch1), is a known mitochondrial protein that induces apoptosis.
  • PSAP was initially identified through its interaction with presenilin 1.

Purpose of the Study:

  • To investigate the proapoptotic activity and mitochondrial localization mechanisms of PSAP.
  • To characterize the role of alternative splicing and transmembrane domains in PSAP function.

Main Methods:

  • RT-PCR and Western blot assays were used to determine PSAP isoform expression.
  • Mutagenesis studies involving deletion and replacement of transmembrane segments were performed to assess mitochondrial import.
  • Analysis of protein regions responsible for proapoptotic activity.

Main Results:

  • Two proapoptotic PSAP isoforms, differing in a hydrophilic loop, are generated by alternative splicing and expressed in various tissues and cells.
  • PSAP is an integral mitochondrial outer membrane protein, despite possessing a mitochondrial carrier domain.
  • A specific transmembrane domain in the correct position and orientation is essential for PSAP mitochondrial import, with sequence also playing a role.
  • Two N-terminal regions were identified as responsible for PSAP's proapoptotic activity.

Conclusions:

  • Alternative splicing generates functionally distinct PSAP isoforms.
  • PSAP's mitochondrial localization is dependent on a correctly positioned and oriented transmembrane domain.
  • Specific N-terminal regions mediate the proapoptotic effects of PSAP, offering insights into its cellular function.

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