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Positional dynamics and glycosomal recruitment of developmental regulators during trypanosome differentiation

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Positional dynamics and glycosomal recruitment of developmental regulators during trypanosome differentiation. / Szö Ő Rbalazs, Balázs; Simon, Dorina V.; Rojas, Federico et al.
In: MBio, Vol. 10, No. 4, e00875-19, 01.07.2019.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Szö Ő Rbalazs, B, Simon, DV, Rojas, F, Young, J, Robinson, DR, Krüger, T, Engstler, M & Matthews, KR 2019, 'Positional dynamics and glycosomal recruitment of developmental regulators during trypanosome differentiation', MBio, vol. 10, no. 4, e00875-19. https://doi.org/10.1128/mBio.00875-19

APA

Szö Ő Rbalazs, B., Simon, D. V., Rojas, F., Young, J., Robinson, D. R., Krüger, T., Engstler, M., & Matthews, K. R. (2019). Positional dynamics and glycosomal recruitment of developmental regulators during trypanosome differentiation. MBio, 10(4), Article e00875-19. https://doi.org/10.1128/mBio.00875-19

Vancouver

Szö Ő Rbalazs B, Simon DV, Rojas F, Young J, Robinson DR, Krüger T et al. Positional dynamics and glycosomal recruitment of developmental regulators during trypanosome differentiation. MBio. 2019 Jul 1;10(4):e00875-19. doi: 10.1128/mBio.00875-19

Author

Szö Ő Rbalazs, Balázs ; Simon, Dorina V. ; Rojas, Federico et al. / Positional dynamics and glycosomal recruitment of developmental regulators during trypanosome differentiation. In: MBio. 2019 ; Vol. 10, No. 4.

Bibtex

@article{3690aa61b25c436e9522dac28e0e1382,
title = "Positional dynamics and glycosomal recruitment of developmental regulators during trypanosome differentiation",
abstract = "Glycosomes are peroxisome-related organelles that compartmentalize the glycolytic enzymes in kinetoplastid parasites. These organelles are developmentally regulated in their number and composition, allowing metabolic adaptation to the parasite{\textquoteright}s needs in the blood of mammalian hosts or within their arthropod vector. A protein phosphatase cascade regulates differentiation between parasite developmental forms, comprising a tyrosine phosphatase, Trypanosoma brucei PTP1 (TbPTP1), which dephosphorylates and inhibits a serine threonine phosphatase, Tb- PIP39, which promotes differentiation. When TbPTP1 is inactivated, TbPIP39 is activated and during differentiation becomes located in glycosomes. Here we have tracked TbPIP39 recruitment to glycosomes during differentiation from bloodstream “stumpy” forms to procyclic forms. Detailed microscopy and live-cell imaging during the synchronous transition between life cycle stages revealed that in stumpy forms, TbPIP39 is located at a periflagellar pocket site closely associated with TbVAP, which defines the flagellar pocket endoplasmic reticulum. TbPTP1 is also located at the same site in stumpy forms, as is REG9.1, a regulator of stumpy-enriched mRNAs. This site provides a molecular node for the interaction between TbPTP1 and TbPIP39. Within 30 min of the initiation of differentiation, TbPIP39 relocates to glycosomes, whereas TbPTP1 disperses to the cytosol. Overall, the study identifies a “stumpy regulatory nexus” (STuRN) that coordinates the molecular components of life cycle signaling and glycosomal development during transmission of Trypanosoma brucei.",
keywords = "Development, Differentiation, Glycosome, Organelle, Parasite, Trypanosome",
author = "{Sz{\"o} {\H O} Rbalazs}, Bal{\'a}zs and Simon, {Dorina V.} and Federico Rojas and Julie Young and Robinson, {Derrick R.} and Timothy Kr{\"u}ger and Markus Engstler and Matthews, {Keith R.}",
year = "2019",
month = jul,
day = "1",
doi = "10.1128/mBio.00875-19",
language = "English",
volume = "10",
journal = "MBio",
issn = "2161-2129",
publisher = "American Society for Microbiology",
number = "4",

}

RIS

TY - JOUR

T1 - Positional dynamics and glycosomal recruitment of developmental regulators during trypanosome differentiation

AU - Szö Ő Rbalazs, Balázs

AU - Simon, Dorina V.

AU - Rojas, Federico

AU - Young, Julie

AU - Robinson, Derrick R.

AU - Krüger, Timothy

AU - Engstler, Markus

AU - Matthews, Keith R.

PY - 2019/7/1

Y1 - 2019/7/1

N2 - Glycosomes are peroxisome-related organelles that compartmentalize the glycolytic enzymes in kinetoplastid parasites. These organelles are developmentally regulated in their number and composition, allowing metabolic adaptation to the parasite’s needs in the blood of mammalian hosts or within their arthropod vector. A protein phosphatase cascade regulates differentiation between parasite developmental forms, comprising a tyrosine phosphatase, Trypanosoma brucei PTP1 (TbPTP1), which dephosphorylates and inhibits a serine threonine phosphatase, Tb- PIP39, which promotes differentiation. When TbPTP1 is inactivated, TbPIP39 is activated and during differentiation becomes located in glycosomes. Here we have tracked TbPIP39 recruitment to glycosomes during differentiation from bloodstream “stumpy” forms to procyclic forms. Detailed microscopy and live-cell imaging during the synchronous transition between life cycle stages revealed that in stumpy forms, TbPIP39 is located at a periflagellar pocket site closely associated with TbVAP, which defines the flagellar pocket endoplasmic reticulum. TbPTP1 is also located at the same site in stumpy forms, as is REG9.1, a regulator of stumpy-enriched mRNAs. This site provides a molecular node for the interaction between TbPTP1 and TbPIP39. Within 30 min of the initiation of differentiation, TbPIP39 relocates to glycosomes, whereas TbPTP1 disperses to the cytosol. Overall, the study identifies a “stumpy regulatory nexus” (STuRN) that coordinates the molecular components of life cycle signaling and glycosomal development during transmission of Trypanosoma brucei.

AB - Glycosomes are peroxisome-related organelles that compartmentalize the glycolytic enzymes in kinetoplastid parasites. These organelles are developmentally regulated in their number and composition, allowing metabolic adaptation to the parasite’s needs in the blood of mammalian hosts or within their arthropod vector. A protein phosphatase cascade regulates differentiation between parasite developmental forms, comprising a tyrosine phosphatase, Trypanosoma brucei PTP1 (TbPTP1), which dephosphorylates and inhibits a serine threonine phosphatase, Tb- PIP39, which promotes differentiation. When TbPTP1 is inactivated, TbPIP39 is activated and during differentiation becomes located in glycosomes. Here we have tracked TbPIP39 recruitment to glycosomes during differentiation from bloodstream “stumpy” forms to procyclic forms. Detailed microscopy and live-cell imaging during the synchronous transition between life cycle stages revealed that in stumpy forms, TbPIP39 is located at a periflagellar pocket site closely associated with TbVAP, which defines the flagellar pocket endoplasmic reticulum. TbPTP1 is also located at the same site in stumpy forms, as is REG9.1, a regulator of stumpy-enriched mRNAs. This site provides a molecular node for the interaction between TbPTP1 and TbPIP39. Within 30 min of the initiation of differentiation, TbPIP39 relocates to glycosomes, whereas TbPTP1 disperses to the cytosol. Overall, the study identifies a “stumpy regulatory nexus” (STuRN) that coordinates the molecular components of life cycle signaling and glycosomal development during transmission of Trypanosoma brucei.

KW - Development

KW - Differentiation

KW - Glycosome

KW - Organelle

KW - Parasite

KW - Trypanosome

U2 - 10.1128/mBio.00875-19

DO - 10.1128/mBio.00875-19

M3 - Journal article

C2 - 31289175

AN - SCOPUS:85069307136

VL - 10

JO - MBio

JF - MBio

SN - 2161-2129

IS - 4

M1 - e00875-19

ER -