2hmn Citations

Structural basis for regioselectivity and stereoselectivity of product formation by naphthalene 1,2-dioxygenase.

J Bacteriol 188 6986-94 (2006)
Related entries: 2hmj, 2hmk, 2hml, 2hmm, 2hmo

Cited: 34 times
EuropePMC logo PMID: 16980501

Abstract

Rieske oxygenase (RO) systems are two- and three-component enzyme systems that catalyze the formation of cis-dihydrodiols from aromatic substrates. Degradation of pollutants in contaminated soil and generation of chiral synthons have been the major foci of RO research. Substrate specificity and product regio- and stereoselectivity have been shown to vary between individual ROs. While directed evolution methods for altering RO function have been successful in the past, rational engineering of these enzymes still poses a challenge due to the lack of structural understanding. Here we examine the structural changes induced by mutation of Phe-352 in naphthalene 1,2-dioxygenase from Pseudomonas sp. strain NCIB 9816-4 (NDO-O(9816-4)). Structures of the Phe-352-Val mutant in native form and in complex with phenanthrene and anthracene, along with those of wild-type NDO-O(9816-4) in complex with phenanthrene, anthracene, and 3-nitrotoluene, are presented. Phenanthrene was shown to bind in a different orientation in the Phe-352-Val mutant active site from that in the wild type, while anthracene was found to bind in similar positions in both enzymes. Two orientations of 3-nitrotoluene were observed, i.e., a productive and a nonproductive orientation. These orientations help explain why NDO-O(9816-4) forms different products from 3-nitrotoluene than those made from nitrobenzene dioxygenase. Comparison of these structures among themselves and with other known ROs bound to substrates reveals that the orientation of substrate binding at the active site is the primary determinant of product regio- and stereoselectivity.

Articles - 2hmn mentioned but not cited (2)



Reviews citing this publication (7)

  1. Microbial biodegradation of polyaromatic hydrocarbons. Peng RH, Xiong AS, Xue Y, Fu XY, Gao F, Zhao W, Tian YS, Yao QH. FEMS Microbiol Rev 32 927-955 (2008)
  2. Mononuclear non-heme iron enzymes with the 2-His-1-carboxylate facial triad: recent developments in enzymology and modeling studies. Bruijnincx PC, van Koten G, Klein Gebbink RJ. Chem Soc Rev 37 2716-2744 (2008)
  3. Non-heme iron-dependent dioxygenases: unravelling catalytic mechanisms for complex enzymatic oxidations. Bugg TD, Ramaswamy S. Curr Opin Chem Biol 12 134-140 (2008)
  4. Role of oxygenases in guiding diverse metabolic pathways in the bacterial degradation of low-molecular-weight polycyclic aromatic hydrocarbons: a review. Mallick S, Chakraborty J, Dutta TK. Crit Rev Microbiol 37 64-90 (2011)
  5. 3-Ketosteroid 9α-hydroxylase enzymes: Rieske non-heme monooxygenases essential for bacterial steroid degradation. Petrusma M, van der Geize R, Dijkhuizen L. Antonie Van Leeuwenhoek 106 157-172 (2014)
  6. Transgenic plants to improve rhizoremediation of polychlorinated biphenyls (PCBs). Sylvestre M, Macek T, Mackova M. Curr Opin Biotechnol 20 242-247 (2009)
  7. Catalytic resilience of multicomponent aromatic ring-hydroxylating dioxygenases in Pseudomonas for degradation of polycyclic aromatic hydrocarbons. Yesankar PJ, Patil A, Kapley A, Qureshi A. World J Microbiol Biotechnol 39 166 (2023)

Articles citing this publication (25)