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.
Abstract:
Human mesotrypsin is highly homologous to other mammalian trypsins, and yet it is functionally unique in possessing resistance to inhibition by canonical serine protease inhibitors and in cleaving these inhibitors as preferred substrates. Arg-193 and Ser-39 have been identified as contributors to the inhibitor resistance and cleavage capability of mesotrypsin, but it is not known whether these residues fully account for the unusual properties of mesotrypsin. Here, we use human cationic trypsin as a template for engineering a gain of catalytic function, assessing mutants containing mesotrypsin-like mutations for resistance to inhibition by bovine pancreatic trypsin inhibitor (BPTI) and amyloid precursor protein Kunitz protease inhibitor (APPI), and for the ability to hydrolyze these inhibitors as substrates. We find that Arg-193 and Ser-39 are sufficient to confer mesotrypsin-like resistance to inhibition; however, compared with mesotrypsin, the trypsin-Y39S/G193R double mutant remains 10-fold slower at hydrolyzing BPTI and 2.5-fold slower at hydrolyzing APPI. We identify two additional residues in mesotrypsin, Lys-74 and Asp-97, which in concert with Arg-193 and Ser-39 confer the full catalytic capability of mesotrypsin for proteolysis of BPTI and APPI. Novel crystal structures of trypsin mutants in complex with BPTI suggest that these four residues function cooperatively to favor conformational dynamics that assist in dissociation of cleaved inhibitors. Our results reveal that efficient inhibitor cleavage is a complex capability to which at least four spatially separated residues of mesotrypsin contribute. These findings suggest that inhibitor cleavage represents a functional adaptation of mesotrypsin that may have evolved in response to positive selection pressure.
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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