4.6 Article

Mechanistic analysis of wheat chlorophyllase

Journal

ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS
Volume 438, Issue 2, Pages 146-155

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.abb.2005.04.019

Keywords

chlorophyll; chlorophyllase; Triticum aestivum; plant senescence; hydrolase; reaction mechanism

Funding

  1. Div Of Biological Infrastructure
  2. Direct For Biological Sciences [0851838] Funding Source: National Science Foundation

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Chlorophyllase catalyzes the initial step in the degradation of chlorophyll and plays a key role in leaf senescence and fruit ripening. Here, we report the cloning of chlorophyllase from Triticum aestivum (wheat) and provide a detailed mechanistic analysis of the enzyme. Purification of recombinant chlorophyllase from an Escherichia coli expression system indicates that the enzyme functions as a dimeric protein. Wheat chlorophyllase hydrolyzed the phytol moiety from chlorophyll (k(cat) = 566 min(-1); K6(m) = 63 mu M) and was active over a broad temperature range (10-75 degrees C). In addition, the enzyme displays carboxylesterase activity toward p-nitrophenyl (PNP)-butyrate, PNP-decanoate, and PNP-palmitate. The pH-dependence of the reaction showed the involvement of an active site residue with a pK(a) of similar to 6.5 for both k(cat) and k(cat)/K-m with chlorophyll, PNP-butyrate, and PNP-decanoate. Using these substrates, solvent kinetic isotope effects ranging from 1.5 to 1.9 and from 1.4 to 1.9 on k(cat) and k(cat)/K-m, respectively, were observed. Proton inventory experiments suggest the transfer of a single proton in the rate-limiting step. Our analysis of wheat chlorophyllase indicates that the enzyme uses a charge-relay mechanism similar to other carboxylesterases for catalysis. Understanding the activity and mechanism of chlorophyllase provides insight on the biological and chemical control of senescence in plants and lays the groundwork for biotechnological improvement of this enzyme. (c) 2005 Elsevier Inc. All rights reserved.

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