Golgi enlargement in Arf-depleted yeast cells is due to altered dynamics of cisternal maturation. 2014

Madhura Bhave, and Effrosyni Papanikou, and Prasanna Iyer, and Koushal Pandya, and Bhawik Kumar Jain, and Abira Ganguly, and Chandrakala Sharma, and Ketakee Pawar, and Jotham Austin, and Kasey J Day, and Olivia W Rossanese, and Benjamin S Glick, and Dibyendu Bhattacharyya
Advanced Centre for Treatment Research & Education in Cancer (ACTREC), Tata Memorial Centre, Kharghar, Navi Mumbai, 410210 MH, India.

Regulation of the size and abundance of membrane compartments is a fundamental cellular activity. In Saccharomyces cerevisiae, disruption of the ADP-ribosylation factor 1 (ARF1) gene yields larger and fewer Golgi cisternae by partially depleting the Arf GTPase. We observed a similar phenotype with a thermosensitive mutation in Nmt1, which myristoylates and activates Arf. Therefore, partial depletion of Arf is a convenient tool for dissecting mechanisms that regulate Golgi structure. We found that in arf1Δ cells, late Golgi structure is particularly abnormal, with the number of late Golgi cisternae being severely reduced. This effect can be explained by selective changes in cisternal maturation kinetics. The arf1Δ mutation causes early Golgi cisternae to mature more slowly and less frequently, but does not alter the maturation of late Golgi cisternae. These changes quantitatively explain why late Golgi cisternae are fewer in number and correspondingly larger. With a stacked Golgi, similar changes in maturation kinetics could be used by the cell to modulate the number of cisternae per stack. Thus, the rates of processes that transform a maturing compartment can determine compartmental size and copy number.

UI MeSH Term Description Entries
D009154 Mutation Any detectable and heritable change in the genetic material that causes a change in the GENOTYPE and which is transmitted to daughter cells and to succeeding generations. Mutations
D009227 Myristic Acids 14-carbon saturated monocarboxylic acids. Tetradecanoic Acids,Acids, Myristic,Acids, Tetradecanoic
D006056 Golgi Apparatus A stack of flattened vesicles that functions in posttranslational processing and sorting of proteins, receiving them from the rough ENDOPLASMIC RETICULUM and directing them to secretory vesicles, LYSOSOMES, or the CELL MEMBRANE. The movement of proteins takes place by transfer vesicles that bud off from the rough endoplasmic reticulum or Golgi apparatus and fuse with the Golgi, lysosomes or cell membrane. (From Glick, Glossary of Biochemistry and Molecular Biology, 1990) Golgi Complex,Apparatus, Golgi,Complex, Golgi
D001692 Biological Transport The movement of materials (including biochemical substances and drugs) through a biological system at the cellular level. The transport can be across cell membranes and epithelial layers. It also can occur within intracellular compartments and extracellular compartments. Transport, Biological,Biologic Transport,Transport, Biologic
D012441 Saccharomyces cerevisiae A species of the genus SACCHAROMYCES, family Saccharomycetaceae, order Saccharomycetales, known as "baker's" or "brewer's" yeast. The dried form is used as a dietary supplement. Baker's Yeast,Brewer's Yeast,Candida robusta,S. cerevisiae,Saccharomyces capensis,Saccharomyces italicus,Saccharomyces oviformis,Saccharomyces uvarum var. melibiosus,Yeast, Baker's,Yeast, Brewer's,Baker Yeast,S cerevisiae,Baker's Yeasts,Yeast, Baker
D015966 Gene Expression Regulation, Fungal Any of the processes by which nuclear, cytoplasmic, or intercellular factors influence the differential control of gene action in fungi. Fungal Gene Expression Regulation,Regulation of Gene Expression, Fungal,Regulation, Gene Expression, Fungal
D020823 ADP-Ribosylation Factor 1 ADP-RIBOSYLATION FACTOR 1 is involved in regulating intracellular transport by modulating the interaction of coat proteins with organelle membranes in the early secretory pathway. It is a component of COAT PROTEIN COMPLEX I. This enzyme was formerly listed as EC 3.6.1.47. ARF 1 Protein,ARF1 Protein,ARF1p,ADP Ribosylation Factor 1,Protein, ARF1
D029701 Saccharomyces cerevisiae Proteins Proteins obtained from the species SACCHAROMYCES CEREVISIAE. The function of specific proteins from this organism are the subject of intense scientific interest and have been used to derive basic understanding of the functioning similar proteins in higher eukaryotes. Baker's Yeast Proteins,S cerevisiae Proteins

Related Publications

Madhura Bhave, and Effrosyni Papanikou, and Prasanna Iyer, and Koushal Pandya, and Bhawik Kumar Jain, and Abira Ganguly, and Chandrakala Sharma, and Ketakee Pawar, and Jotham Austin, and Kasey J Day, and Olivia W Rossanese, and Benjamin S Glick, and Dibyendu Bhattacharyya
June 2006, Nature,
Madhura Bhave, and Effrosyni Papanikou, and Prasanna Iyer, and Koushal Pandya, and Bhawik Kumar Jain, and Abira Ganguly, and Chandrakala Sharma, and Ketakee Pawar, and Jotham Austin, and Kasey J Day, and Olivia W Rossanese, and Benjamin S Glick, and Dibyendu Bhattacharyya
February 2007, Tanpakushitsu kakusan koso. Protein, nucleic acid, enzyme,
Madhura Bhave, and Effrosyni Papanikou, and Prasanna Iyer, and Koushal Pandya, and Bhawik Kumar Jain, and Abira Ganguly, and Chandrakala Sharma, and Ketakee Pawar, and Jotham Austin, and Kasey J Day, and Olivia W Rossanese, and Benjamin S Glick, and Dibyendu Bhattacharyya
September 2016, Journal of cell science,
Madhura Bhave, and Effrosyni Papanikou, and Prasanna Iyer, and Koushal Pandya, and Bhawik Kumar Jain, and Abira Ganguly, and Chandrakala Sharma, and Ketakee Pawar, and Jotham Austin, and Kasey J Day, and Olivia W Rossanese, and Benjamin S Glick, and Dibyendu Bhattacharyya
December 2008, Tanpakushitsu kakusan koso. Protein, nucleic acid, enzyme,
Madhura Bhave, and Effrosyni Papanikou, and Prasanna Iyer, and Koushal Pandya, and Bhawik Kumar Jain, and Abira Ganguly, and Chandrakala Sharma, and Ketakee Pawar, and Jotham Austin, and Kasey J Day, and Olivia W Rossanese, and Benjamin S Glick, and Dibyendu Bhattacharyya
August 2016, eLife,
Madhura Bhave, and Effrosyni Papanikou, and Prasanna Iyer, and Koushal Pandya, and Bhawik Kumar Jain, and Abira Ganguly, and Chandrakala Sharma, and Ketakee Pawar, and Jotham Austin, and Kasey J Day, and Olivia W Rossanese, and Benjamin S Glick, and Dibyendu Bhattacharyya
June 2013, The Journal of cell biology,
Madhura Bhave, and Effrosyni Papanikou, and Prasanna Iyer, and Koushal Pandya, and Bhawik Kumar Jain, and Abira Ganguly, and Chandrakala Sharma, and Ketakee Pawar, and Jotham Austin, and Kasey J Day, and Olivia W Rossanese, and Benjamin S Glick, and Dibyendu Bhattacharyya
December 2009, PloS one,
Madhura Bhave, and Effrosyni Papanikou, and Prasanna Iyer, and Koushal Pandya, and Bhawik Kumar Jain, and Abira Ganguly, and Chandrakala Sharma, and Ketakee Pawar, and Jotham Austin, and Kasey J Day, and Olivia W Rossanese, and Benjamin S Glick, and Dibyendu Bhattacharyya
June 2006, Nature,
Madhura Bhave, and Effrosyni Papanikou, and Prasanna Iyer, and Koushal Pandya, and Bhawik Kumar Jain, and Abira Ganguly, and Chandrakala Sharma, and Ketakee Pawar, and Jotham Austin, and Kasey J Day, and Olivia W Rossanese, and Benjamin S Glick, and Dibyendu Bhattacharyya
March 1998, Molecular biology of the cell,
Madhura Bhave, and Effrosyni Papanikou, and Prasanna Iyer, and Koushal Pandya, and Bhawik Kumar Jain, and Abira Ganguly, and Chandrakala Sharma, and Ketakee Pawar, and Jotham Austin, and Kasey J Day, and Olivia W Rossanese, and Benjamin S Glick, and Dibyendu Bhattacharyya
September 1997, FEBS letters,
Copied contents to your clipboard!