Literature DB >> 27303047

The PP-motif in luminal loop 2 of ZnT transporters plays a pivotal role in TNAP activation.

Shigeyuki Fujimoto1, Tokuji Tsuji1, Takashi Fujiwara2, Taka-Aki Takeda1, Chengfeng Merriman3, Ayako Fukunaka1, Yukina Nishito1, Dax Fu3, Eitan Hoch4, Israel Sekler4, Kazuhisa Fukue1, Yusaku Miyamae1, Seiji Masuda1, Masaya Nagao1, Taiho Kambe5.   

Abstract

Secretory and membrane-bound zinc-requiring enzymes are thought to be activated by binding zinc in the early secretory pathway. One such enzyme, tissue-non-specific alkaline phosphatase (TNAP), is activated through a two-step mechanism, via protein stabilization and subsequent enzyme activation through metalation, by ZnT5-ZnT6 heterodimers or ZnT7 homodimers. However, little is known about the molecular basis underlying the activation process. In the present study, we found that the di-proline motif (PP-motif) in luminal loop 2 of ZnT5 and ZnT7 is important for TNAP activation. TNAP activity was significantly reduced in cells lacking ZnT5-ZnT6 heterodimers and ZnT7 homodimers [triple knockout (TKO) cells]. The decreased TNAP activity was restored by expressing hZnT5 with hZnT6 or hZnT7, but significantly less so (almost 90% less) by expressing mutants thereof in which the PP-motif was mutated to alanine (PP-AA). In TKO cells, overexpressed hTNAP was not completely activated, and it was converted less efficiently into the holo form by expressing a PP-AA mutant of hZnT5 with hZnT6, whose defects were not restored by zinc supplementation. The zinc transport activity of hZnT7 was not significantly impaired by the PP-AA mutation, indicating that the PP-motif is involved in the TNAP maturation process, although it does not control zinc transport activity. The PP-motif is highly conserved in ZnT5 and ZnT7 orthologues, and its importance for TNAP activation is conserved in the Caenorhabditis elegans hZnT5 orthologue CDF5. These results provide novel molecular insights into the TNAP activation process in the early secretory pathway.
© 2016 The Author(s). published by Portland Press Limited on behalf of the Biochemical Society.

Entities:  

Keywords:  PP-motif; TNAP; ZnT; early secretory pathway; zinc transport; zinc-requiring enzyme

Mesh:

Substances:

Year:  2016        PMID: 27303047      PMCID: PMC5557410          DOI: 10.1042/BCJ20160324

Source DB:  PubMed          Journal:  Biochem J        ISSN: 0264-6021            Impact factor:   3.857


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