Literature DB >> 22132858

The crystal structure of human UDP-glucose pyrophosphorylase reveals a latch effect that influences enzymatic activity.

Quan Yu1, Xiaofeng Zheng.   

Abstract

UGPase (UDP-glucose pyrophosphorylase) is highly conserved among eukaryotes. UGPase reversibly catalyses the formation of UDP-glucose and is critical in carbohydrate metabolism. Previous studies have mainly focused on the UGPases from plants, fungi and parasites, and indicate that the regulatory mechanisms responsible for the enzyme activity vary among different organisms. In the present study, the crystal structure of hUGPase (human UGPase) was determined and shown to form octamers through end-to-end and side-by-side interactions. The observed latch loop in hUGPase differs distinctly from yUGPase (yeast UGPase), which could explain why hUGPase and yUGPase possess different enzymatic activities. Mutagenesis studies showed that both dissociation of octamers and mutations of the latch loop can significantly affect the UGPase activity. Moreover, this latch effect is also evolutionarily meaningful in UGPase from different species.

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Year:  2012        PMID: 22132858     DOI: 10.1042/BJ20111598

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


  10 in total

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Journal:  J Biol Chem       Date:  2014-10-15       Impact factor: 5.157

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Review 4.  Glycogen metabolism in humans.

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Review 5.  Liver glucose metabolism in humans.

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6.  Crystal structure and insights into the oligomeric state of UDP-glucose pyrophosphorylase from sugarcane.

Authors:  Camila A Cotrim; Jose Sergio M Soares; Bostjan Kobe; Marcelo Menossi
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7.  A quaternary mechanism enables the complex biological functions of octameric human UDP-glucose pyrophosphorylase, a key enzyme in cell metabolism.

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Review 8.  Carbohydrate and Amino Acid Metabolism as Hallmarks for Innate Immune Cell Activation and Function.

Authors:  Haoxin Zhao; Lydia N Raines; Stanley Ching-Cheng Huang
Journal:  Cells       Date:  2020-02-27       Impact factor: 6.600

9.  Identification of Leishmania major UDP-Sugar Pyrophosphorylase Inhibitors Using Biosensor-Based Small Molecule Fragment Library Screening.

Authors:  Ohm Prakash; Jana Führing; John Post; Sharon M Shepherd; Thomas C Eadsforth; David Gray; Roman Fedorov; Françoise H Routier
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10.  Loss of UGP2 in brain leads to a severe epileptic encephalopathy, emphasizing that bi-allelic isoform-specific start-loss mutations of essential genes can cause genetic diseases.

Authors:  Elena Perenthaler; Anita Nikoncuk; Soheil Yousefi; Woutje M Berdowski; Maysoon Alsagob; Ivan Capo; Herma C van der Linde; Paul van den Berg; Edwin H Jacobs; Darija Putar; Mehrnaz Ghazvini; Eleonora Aronica; Wilfred F J van IJcken; Walter G de Valk; Evita Medici-van den Herik; Marjon van Slegtenhorst; Lauren Brick; Mariya Kozenko; Jennefer N Kohler; Jonathan A Bernstein; Kristin G Monaghan; Amber Begtrup; Rebecca Torene; Amna Al Futaisi; Fathiya Al Murshedi; Renjith Mani; Faisal Al Azri; Erik-Jan Kamsteeg; Majid Mojarrad; Atieh Eslahi; Zaynab Khazaei; Fateme Massinaei Darmiyan; Mohammad Doosti; Ehsan Ghayoor Karimiani; Jana Vandrovcova; Faisal Zafar; Nuzhat Rana; Krishna K Kandaswamy; Jozef Hertecant; Peter Bauer; Mohammed A AlMuhaizea; Mustafa A Salih; Mazhor Aldosary; Rawan Almass; Laila Al-Quait; Wafa Qubbaj; Serdar Coskun; Khaled O Alahmadi; Muddathir H A Hamad; Salem Alwadaee; Khalid Awartani; Anas M Dababo; Futwan Almohanna; Dilek Colak; Mohammadreza Dehghani; Mohammad Yahya Vahidi Mehrjardi; Murat Gunel; A Gulhan Ercan-Sencicek; Gouri Rao Passi; Huma Arshad Cheema; Stephanie Efthymiou; Henry Houlden; Aida M Bertoli-Avella; Alice S Brooks; Kyle Retterer; Reza Maroofian; Namik Kaya; Tjakko J van Ham; Tahsin Stefan Barakat
Journal:  Acta Neuropathol       Date:  2019-12-09       Impact factor: 17.088

  10 in total

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