Sequence and conformational specificity in substrate recognition: several human Kunitz protease inhibitor domains are

Devon Pendlebury1, Ruiying Wang1, Rachel D Henin1

  • 1From the Department of Cancer Biology, Mayo Clinic Comprehensive Cancer Center, Jacksonville, Florida 32224.

Insights

Mesotrypsin cleaves specific Kunitz protease inhibitor domains, including those in APLP2, bikunin, and HAI2, revealing substrate specificity determinants. This protease

Area of Science:

  • Biochemistry
  • Protease research
  • Enzymology

Background:

  • Mesotrypsin, a trypsin isoform, resists inhibitors and cleaves specific substrates.
  • Amyloid precursor protein Kunitz protease inhibitor domain (APPI) is a known mesotrypsin substrate.
  • Cleavage site conformation influences mesotrypsin recognition.

Purpose of the Study:

  • To identify novel mesotrypsin substrates among Kunitz protease inhibitor domains.
  • To elucidate the structural basis of mesotrypsin substrate specificity.
  • To explore mesotrypsin's role in cancer progression.

Main Methods:

  • Assessed cleavage of candidate substrates (APLP2, bikunin, HAI2, TFPI1, TFPI2, E-selectin) by mesotrypsin.
  • Determined kinetic profiles for substrate cleavage.
  • Obtained cocrystal structures of mesotrypsin with HAI2 and bikunin Kunitz domains.

Main Results:

  • Mesotrypsin efficiently cleaved Kunitz domains in APLP2, bikunin, and HAI2.
  • TFPI1 and TFPI2 Kunitz domains showed less efficient cleavage; E-selectin was not cleaved.
  • Cocrystal structures revealed mesotrypsin's interaction mode with canonical substrates.

Conclusions:

  • Mesotrypsin substrate specificity is determined by P1/P'2 sequence preferences and cleavage site conformation.
  • Proteolytic clearance of Kunitz inhibitors by mesotrypsin may contribute to cancer progression.

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