Mesotrypsin Has Evolved Four Unique Residues to Cleave Trypsin Inhibitors as Substrates

Alexandre P Alloy1, Olumide Kayode1, Ruiying Wang1

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

Insights

Human mesotrypsin uniquely resists and cleaves protease inhibitors. Researchers found four key residues (Arg-193, Ser-39, Lys-74, Asp-97) are essential for mesotrypsin

Area of Science:

  • Biochemistry
  • Enzymology
  • Structural Biology

Background:

  • Human mesotrypsin exhibits unique resistance to serine protease inhibitors.
  • Mesotrypsin also cleaves these inhibitors, unlike other mammalian trypsins.
  • Previous studies identified Arg-193 and Ser-39 as contributing factors, but their sufficiency was unknown.

Purpose of the Study:

  • To determine if Arg-193 and Ser-39 fully explain mesotrypsin's unique inhibitor resistance and cleavage.
  • To identify additional residues responsible for mesotrypsin's full catalytic function.
  • To elucidate the structural basis for mesotrypsin's unusual properties.

Main Methods:

  • Site-directed mutagenesis of human cationic trypsin to mimic mesotrypsin mutations.
  • Assays to measure resistance to inhibition by BPTI and APPI.
  • Enzymatic assays to quantify inhibitor hydrolysis rates.
  • X-ray crystallography to determine structures of trypsin mutants bound to BPTI.

Main Results:

  • Arg-193 and Ser-39 conferred resistance to inhibition but not full cleavage capability.
  • A trypsin mutant with these two residues was significantly slower at hydrolyzing BPTI and APPI.
  • Lys-74 and Asp-97, in conjunction with Arg-193 and Ser-39, were identified as necessary for full catalytic function.
  • Crystal structures revealed cooperative function of these four residues in promoting inhibitor dissociation.

Conclusions:

  • Efficient cleavage of protease inhibitors by mesotrypsin is a complex trait involving at least four residues.
  • These residues likely function by promoting conformational dynamics that facilitate cleaved inhibitor release.
  • Inhibitor cleavage represents a potential functional adaptation of mesotrypsin, possibly driven by evolutionary selection pressure.

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