4.8 Article

Conformational Plasticity in Human Heme-Based Dioxygenases

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JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 143, 期 4, 页码 1836-1845

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AMER CHEMICAL SOC
DOI: 10.1021/jacs.0c09970

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  1. DOE Office of Science by Brookhaven National Laboratory [DE-SC0012704]
  2. DOE Office of Science by Argonne National Laboratory [DE-AC02-06CH11357]
  3. National Institutes of Health [GM115773, GM126297]

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This study used carbon monoxide as a structural probe to investigate how the functionalities of hIDO1 and hTDO are encoded in their structures. The findings revealed the remarkable conformational plasticity of hIDO1 and the more rigid protein architecture of hTDO, providing new insights into the structure and function relationships of heme-based dioxygenases.
Human indoleamine 2,3-dioxygenase 1 (hIDO1) and human tryptophan dioxygenase (hTDO) are two important heme proteins that degrade the essential amino acid, L-tryptophan (Trp), along the kynurenine pathway. The two enzymes share a similar active site structure and an analogous catalytic mechanism, but they exhibit a variety of distinct functional properties. Here we used carbon monoxide (CO) as a structural probe to interrogate how the functionalities of the two enzymes are encoded in their structures. With X-ray crystallography, we detected an unexpected photochemical intermediate trapped in a crystal of the hIDO1-CO-Trp complex, where CO is photolyzed from the heme iron by X-rays at cryogenic temperatures (100 K). The CO photolysis triggers a large-scale migration of the substrate Trp, as well as the photolyzed CO, from the active site to a temporary binding site, Sa*. It is accompanied by a large conformational change to an active site loop, JK-Loop(C), despite the severely restricted protein motion under the frozen conditions, which highlights the remarkable conformational plasticity of the hIDO1 protein. Comparative studies of a crystal of the hTDO-CO-Trp complex show that CO and Trp remain bound in the active site under comparable X-ray illumination, indicating a much more rigid protein architecture. The data offer important new insights into the structure and function relationships of the heme-based dioxygenases and provide new guidelines for structure-based design of inhibitors targeting them.

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