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Atsuzawa, K.

Publications and source records attributed to Atsuzawa, K..

2 recordsLinked to original sources

Atypical endo-β-1,4-mannannases are necessary for normal glucomannan synthesis in Arabidopsis

The molecular mechanisms underlying the synthesis of large cell wall polysaccharides in plant cells are not fully understood. Here we report that two atypical endo-{beta}-1,4-mannanases (MANs), which are not secreted and do not degrade glucomannan in the cell wall, play a novel role in glucomannan synthesis. Among the six MANs in Arabidopsis, AtMAN2 and AtMAN5 contain a transmembrane domain at their N-terminal region instead of a signal peptide. Subcellular localization using MAN protein fused with fluorescent protein demonstrated that AtMAN2 localizes to the endomembrane system including the Golgi apparatus in xylem and interfascicular fiber cells. We found that an Arabidopsis man2 man5 double mutant lost 65% of glucomannan in the cell walls of the inflorescence stem. Immunostaining and immunoelectron microscopic observation also revealed that the man2 man5 double mutant lost glucomannan in the cell walls to about the same extent as the csla2 csla9 double mutant, which lacks major glucomannan synthases. Gene complementation experiments showed that the enzymatic activities of AtMAN2 and AtMAN5 are important for the function in synthesis of glucomannan for the cell wall. Arabidopsis possesses another atypical MAN, AtMAN6, with an HDEL retention signal at its C-terminus. However, mutation of AtMAN6 did not affect glucomannan content in the cell walls, suggesting distinct functions for these MANs. This study has identified AtMAN2 and AtMAN5 as novel factors necessary for the normal glucomannan synthesis in Arabidopsis, along with GDP-mannose generating enzymes and CslAs, and suggests that the glucomannan hydrolysis by these MANs contributes to the maintenance of glucomannan synthesis.

plant biology↗

Excitation Spillover from PSII to PSI Measured in Leaves at 77K

Heterogeneous distribution of PSI and PSII in thick grana in shade chloroplasts is argued to hinder spillover of chlorophyll excitations from PSII to PSI. To examine this dogma, we measured fluorescence induction at 77K at 690 nm (PSII) and 760 nm (mainly PSI) in the leaf discs of Spinacia oleracea, Cucumis sativus and shade tolerant Alocasia odora, grown at high and low light, and quantified their spillover capacities. PSI fluorescence (FI) consists of the intrinsic PSI fluorescence (FI) and fluorescence caused by excitations spilt over from PSII (FI{beta}). When FI and FII parameters between State 1 and State 2, induced by weak far-red and blue light, were compared, PSII maximum fluorescence (FIIm) and FI{beta} were greater, and FI was smaller in State 1 and thereby the spillover ratio, FI{beta}/(FI +FI{beta}) or FI{beta}/FIm, was greater in State 1. Since the leftover FIIm was found to be about 10% of total Fm at 760 nm, all the data were corrected. Even after the correction, the spillover ratio in FIm in State 1 ranged from 21 to 32%, and the spillover ratios were comparable irrespective of growth light conditions. Although extensive grana in low light grown plants would suggest that PSII and PSI are too separated for spillover, in A. odora chloroplasts, the ratio of non-appressed thylakoid membranes/total thylakoid membranes was little affected by growth light and more than 40%. Abundant non-appressed thylakoids would contribute to efficient spillover.

plant biology↗