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Sequence and Structural Motifs Controlling the Broad Substrate Specificity of the Mycobacterial Hormone-Sensitive Lipase LipN

[Image: see text] Mycobacterium tuberculosis has a complex life cycle transitioning between active and dormant growth states depending on environmental conditions. LipN (Rv2970c) is a conserved mycobacterial serine hydrolase with regulated catalytic activity at the interface between active and dorma...

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Autores principales: Schemenauer, Daniel E., Pool, Emily H., Raynor, Stephanie N., Ruiz, Gabriela P., Goehring, Leah M., Koelper, Andrew J., Wilson, Madeleine A., Durand, Anthony J., Kourtoglou, Elexi C., Larsen, Erik M., Lavis, Luke D., Esteb, John J., Hoops, Geoffrey C., Johnson, R. Jeremy
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10099132/
https://www.ncbi.nlm.nih.gov/pubmed/37065048
http://dx.doi.org/10.1021/acsomega.3c00534
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author Schemenauer, Daniel E.
Pool, Emily H.
Raynor, Stephanie N.
Ruiz, Gabriela P.
Goehring, Leah M.
Koelper, Andrew J.
Wilson, Madeleine A.
Durand, Anthony J.
Kourtoglou, Elexi C.
Larsen, Erik M.
Lavis, Luke D.
Esteb, John J.
Hoops, Geoffrey C.
Johnson, R. Jeremy
author_facet Schemenauer, Daniel E.
Pool, Emily H.
Raynor, Stephanie N.
Ruiz, Gabriela P.
Goehring, Leah M.
Koelper, Andrew J.
Wilson, Madeleine A.
Durand, Anthony J.
Kourtoglou, Elexi C.
Larsen, Erik M.
Lavis, Luke D.
Esteb, John J.
Hoops, Geoffrey C.
Johnson, R. Jeremy
author_sort Schemenauer, Daniel E.
collection PubMed
description [Image: see text] Mycobacterium tuberculosis has a complex life cycle transitioning between active and dormant growth states depending on environmental conditions. LipN (Rv2970c) is a conserved mycobacterial serine hydrolase with regulated catalytic activity at the interface between active and dormant growth conditions. LipN also catalyzes the xenobiotic degradation of a tertiary ester substrate and contains multiple conserved motifs connected with the ability to catalyze the hydrolysis of difficult tertiary ester substrates. Herein, we expanded a library of fluorogenic ester substrates to include more tertiary and constrained esters and screened 33 fluorogenic substrates for activation by LipN, identifying its unique substrate signature. LipN preferred short, unbranched ester substrates, but had its second highest activity against a heteroaromatic five-membered oxazole ester. Oxazole esters are present in multiple mycobacterial serine hydrolase inhibitors but have not been tested widely as ester substrates. Combined structural modeling, kinetic measurements, and substitutional analysis of LipN showcased a fairly rigid binding pocket preorganized for catalysis of short ester substrates. Substitution of diverse amino acids across the binding pocket significantly impacted the folded stability and catalytic activity of LipN with two conserved motifs (HGGGW and GDSAG) playing interconnected, multidimensional roles in regulating its substrate specificity. Together this detailed substrate specificity profile of LipN illustrates the complex interplay between structure and function in mycobacterial hormone-sensitive lipase homologues and indicates oxazole esters as promising inhibitor and substrate scaffolds for mycobacterial hydrolases.
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spelling pubmed-100991322023-04-14 Sequence and Structural Motifs Controlling the Broad Substrate Specificity of the Mycobacterial Hormone-Sensitive Lipase LipN Schemenauer, Daniel E. Pool, Emily H. Raynor, Stephanie N. Ruiz, Gabriela P. Goehring, Leah M. Koelper, Andrew J. Wilson, Madeleine A. Durand, Anthony J. Kourtoglou, Elexi C. Larsen, Erik M. Lavis, Luke D. Esteb, John J. Hoops, Geoffrey C. Johnson, R. Jeremy ACS Omega [Image: see text] Mycobacterium tuberculosis has a complex life cycle transitioning between active and dormant growth states depending on environmental conditions. LipN (Rv2970c) is a conserved mycobacterial serine hydrolase with regulated catalytic activity at the interface between active and dormant growth conditions. LipN also catalyzes the xenobiotic degradation of a tertiary ester substrate and contains multiple conserved motifs connected with the ability to catalyze the hydrolysis of difficult tertiary ester substrates. Herein, we expanded a library of fluorogenic ester substrates to include more tertiary and constrained esters and screened 33 fluorogenic substrates for activation by LipN, identifying its unique substrate signature. LipN preferred short, unbranched ester substrates, but had its second highest activity against a heteroaromatic five-membered oxazole ester. Oxazole esters are present in multiple mycobacterial serine hydrolase inhibitors but have not been tested widely as ester substrates. Combined structural modeling, kinetic measurements, and substitutional analysis of LipN showcased a fairly rigid binding pocket preorganized for catalysis of short ester substrates. Substitution of diverse amino acids across the binding pocket significantly impacted the folded stability and catalytic activity of LipN with two conserved motifs (HGGGW and GDSAG) playing interconnected, multidimensional roles in regulating its substrate specificity. Together this detailed substrate specificity profile of LipN illustrates the complex interplay between structure and function in mycobacterial hormone-sensitive lipase homologues and indicates oxazole esters as promising inhibitor and substrate scaffolds for mycobacterial hydrolases. American Chemical Society 2023-03-30 /pmc/articles/PMC10099132/ /pubmed/37065048 http://dx.doi.org/10.1021/acsomega.3c00534 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Schemenauer, Daniel E.
Pool, Emily H.
Raynor, Stephanie N.
Ruiz, Gabriela P.
Goehring, Leah M.
Koelper, Andrew J.
Wilson, Madeleine A.
Durand, Anthony J.
Kourtoglou, Elexi C.
Larsen, Erik M.
Lavis, Luke D.
Esteb, John J.
Hoops, Geoffrey C.
Johnson, R. Jeremy
Sequence and Structural Motifs Controlling the Broad Substrate Specificity of the Mycobacterial Hormone-Sensitive Lipase LipN
title Sequence and Structural Motifs Controlling the Broad Substrate Specificity of the Mycobacterial Hormone-Sensitive Lipase LipN
title_full Sequence and Structural Motifs Controlling the Broad Substrate Specificity of the Mycobacterial Hormone-Sensitive Lipase LipN
title_fullStr Sequence and Structural Motifs Controlling the Broad Substrate Specificity of the Mycobacterial Hormone-Sensitive Lipase LipN
title_full_unstemmed Sequence and Structural Motifs Controlling the Broad Substrate Specificity of the Mycobacterial Hormone-Sensitive Lipase LipN
title_short Sequence and Structural Motifs Controlling the Broad Substrate Specificity of the Mycobacterial Hormone-Sensitive Lipase LipN
title_sort sequence and structural motifs controlling the broad substrate specificity of the mycobacterial hormone-sensitive lipase lipn
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10099132/
https://www.ncbi.nlm.nih.gov/pubmed/37065048
http://dx.doi.org/10.1021/acsomega.3c00534
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