Cargando…

APEX2 Proximity Proteomics Resolves Flagellum Subdomains and Identifies Flagellum Tip-Specific Proteins in Trypanosoma brucei

Trypanosoma brucei is the protozoan parasite responsible for sleeping sickness, a lethal vector-borne disease. T. brucei has a single flagellum (cilium) that plays critical roles in transmission and pathogenesis. An emerging concept is that the flagellum is organized into subdomains, each having spe...

Descripción completa

Detalles Bibliográficos
Autores principales: Vélez-Ramírez, Daniel E., Shimogawa, Michelle M., Ray, Sunayan S., Lopez, Andrew, Rayatpisheh, Shima, Langousis, Gerasimos, Gallagher-Jones, Marcus, Dean, Samuel, Wohlschlegel, James A., Hill, Kent L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8141408/
https://www.ncbi.nlm.nih.gov/pubmed/33568455
http://dx.doi.org/10.1128/mSphere.01090-20
_version_ 1783696358933266432
author Vélez-Ramírez, Daniel E.
Shimogawa, Michelle M.
Ray, Sunayan S.
Lopez, Andrew
Rayatpisheh, Shima
Langousis, Gerasimos
Gallagher-Jones, Marcus
Dean, Samuel
Wohlschlegel, James A.
Hill, Kent L.
author_facet Vélez-Ramírez, Daniel E.
Shimogawa, Michelle M.
Ray, Sunayan S.
Lopez, Andrew
Rayatpisheh, Shima
Langousis, Gerasimos
Gallagher-Jones, Marcus
Dean, Samuel
Wohlschlegel, James A.
Hill, Kent L.
author_sort Vélez-Ramírez, Daniel E.
collection PubMed
description Trypanosoma brucei is the protozoan parasite responsible for sleeping sickness, a lethal vector-borne disease. T. brucei has a single flagellum (cilium) that plays critical roles in transmission and pathogenesis. An emerging concept is that the flagellum is organized into subdomains, each having specialized composition and function. The overall flagellum proteome has been well studied, but a critical knowledge gap is the protein composition of individual subdomains. We have tested whether APEX-based proximity proteomics could be used to examine the protein composition of T. brucei flagellum subdomains. As APEX-based labeling has not previously been described in T. brucei, we first fused APEX2 to the DRC1 subunit of the nexin-dynein regulatory complex, a well-characterized axonemal complex. We found that DRC1-APEX2 directs flagellum-specific biotinylation, and purification of biotinylated proteins yields a DRC1 “proximity proteome” having good overlap with published proteomes obtained from purified axonemes. Having validated the use of APEX2 in T. brucei, we next attempted to distinguish flagellar subdomains by fusing APEX2 to a flagellar membrane protein that is restricted to the flagellum tip, AC1, and another one that is excluded from the tip, FS179. Fluorescence microscopy demonstrated subdomain-specific biotinylation, and principal-component analysis showed distinct profiles between AC1-APEX2 and FS179-APEX2. Comparing these two profiles allowed us to identify an AC1 proximity proteome that is enriched for tip proteins, including proteins involved in signaling. Our results demonstrate that APEX2-based proximity proteomics is effective in T. brucei and can be used to resolve the proteome composition of flagellum subdomains that cannot themselves be readily purified. IMPORTANCE Sleeping sickness is a neglected tropical disease caused by the protozoan parasite Trypanosoma brucei. The disease disrupts the sleep-wake cycle, leading to coma and death if left untreated. T. brucei motility, transmission, and virulence depend on its flagellum (cilium), which consists of several different specialized subdomains. Given the essential and multifunctional role of the T. brucei flagellum, there is need for approaches that enable proteomic analysis of individual subdomains. Our work establishes that APEX2 proximity labeling can, indeed, be implemented in the biochemical environment of T. brucei and has allowed identification of proximity proteomes for different flagellar subdomains that cannot be purified. This capacity opens the possibility to study the composition and function of other compartments. We expect this approach may be extended to other eukaryotic pathogens and will enhance the utility of T. brucei as a model organism to study ciliopathies, heritable human diseases in which cilium function is impaired.
format Online
Article
Text
id pubmed-8141408
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-81414082021-05-25 APEX2 Proximity Proteomics Resolves Flagellum Subdomains and Identifies Flagellum Tip-Specific Proteins in Trypanosoma brucei Vélez-Ramírez, Daniel E. Shimogawa, Michelle M. Ray, Sunayan S. Lopez, Andrew Rayatpisheh, Shima Langousis, Gerasimos Gallagher-Jones, Marcus Dean, Samuel Wohlschlegel, James A. Hill, Kent L. mSphere Research Article Trypanosoma brucei is the protozoan parasite responsible for sleeping sickness, a lethal vector-borne disease. T. brucei has a single flagellum (cilium) that plays critical roles in transmission and pathogenesis. An emerging concept is that the flagellum is organized into subdomains, each having specialized composition and function. The overall flagellum proteome has been well studied, but a critical knowledge gap is the protein composition of individual subdomains. We have tested whether APEX-based proximity proteomics could be used to examine the protein composition of T. brucei flagellum subdomains. As APEX-based labeling has not previously been described in T. brucei, we first fused APEX2 to the DRC1 subunit of the nexin-dynein regulatory complex, a well-characterized axonemal complex. We found that DRC1-APEX2 directs flagellum-specific biotinylation, and purification of biotinylated proteins yields a DRC1 “proximity proteome” having good overlap with published proteomes obtained from purified axonemes. Having validated the use of APEX2 in T. brucei, we next attempted to distinguish flagellar subdomains by fusing APEX2 to a flagellar membrane protein that is restricted to the flagellum tip, AC1, and another one that is excluded from the tip, FS179. Fluorescence microscopy demonstrated subdomain-specific biotinylation, and principal-component analysis showed distinct profiles between AC1-APEX2 and FS179-APEX2. Comparing these two profiles allowed us to identify an AC1 proximity proteome that is enriched for tip proteins, including proteins involved in signaling. Our results demonstrate that APEX2-based proximity proteomics is effective in T. brucei and can be used to resolve the proteome composition of flagellum subdomains that cannot themselves be readily purified. IMPORTANCE Sleeping sickness is a neglected tropical disease caused by the protozoan parasite Trypanosoma brucei. The disease disrupts the sleep-wake cycle, leading to coma and death if left untreated. T. brucei motility, transmission, and virulence depend on its flagellum (cilium), which consists of several different specialized subdomains. Given the essential and multifunctional role of the T. brucei flagellum, there is need for approaches that enable proteomic analysis of individual subdomains. Our work establishes that APEX2 proximity labeling can, indeed, be implemented in the biochemical environment of T. brucei and has allowed identification of proximity proteomes for different flagellar subdomains that cannot be purified. This capacity opens the possibility to study the composition and function of other compartments. We expect this approach may be extended to other eukaryotic pathogens and will enhance the utility of T. brucei as a model organism to study ciliopathies, heritable human diseases in which cilium function is impaired. American Society for Microbiology 2021-02-10 /pmc/articles/PMC8141408/ /pubmed/33568455 http://dx.doi.org/10.1128/mSphere.01090-20 Text en Copyright © 2021 Vélez-Ramírez et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Vélez-Ramírez, Daniel E.
Shimogawa, Michelle M.
Ray, Sunayan S.
Lopez, Andrew
Rayatpisheh, Shima
Langousis, Gerasimos
Gallagher-Jones, Marcus
Dean, Samuel
Wohlschlegel, James A.
Hill, Kent L.
APEX2 Proximity Proteomics Resolves Flagellum Subdomains and Identifies Flagellum Tip-Specific Proteins in Trypanosoma brucei
title APEX2 Proximity Proteomics Resolves Flagellum Subdomains and Identifies Flagellum Tip-Specific Proteins in Trypanosoma brucei
title_full APEX2 Proximity Proteomics Resolves Flagellum Subdomains and Identifies Flagellum Tip-Specific Proteins in Trypanosoma brucei
title_fullStr APEX2 Proximity Proteomics Resolves Flagellum Subdomains and Identifies Flagellum Tip-Specific Proteins in Trypanosoma brucei
title_full_unstemmed APEX2 Proximity Proteomics Resolves Flagellum Subdomains and Identifies Flagellum Tip-Specific Proteins in Trypanosoma brucei
title_short APEX2 Proximity Proteomics Resolves Flagellum Subdomains and Identifies Flagellum Tip-Specific Proteins in Trypanosoma brucei
title_sort apex2 proximity proteomics resolves flagellum subdomains and identifies flagellum tip-specific proteins in trypanosoma brucei
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8141408/
https://www.ncbi.nlm.nih.gov/pubmed/33568455
http://dx.doi.org/10.1128/mSphere.01090-20
work_keys_str_mv AT velezramirezdaniele apex2proximityproteomicsresolvesflagellumsubdomainsandidentifiesflagellumtipspecificproteinsintrypanosomabrucei
AT shimogawamichellem apex2proximityproteomicsresolvesflagellumsubdomainsandidentifiesflagellumtipspecificproteinsintrypanosomabrucei
AT raysunayans apex2proximityproteomicsresolvesflagellumsubdomainsandidentifiesflagellumtipspecificproteinsintrypanosomabrucei
AT lopezandrew apex2proximityproteomicsresolvesflagellumsubdomainsandidentifiesflagellumtipspecificproteinsintrypanosomabrucei
AT rayatpishehshima apex2proximityproteomicsresolvesflagellumsubdomainsandidentifiesflagellumtipspecificproteinsintrypanosomabrucei
AT langousisgerasimos apex2proximityproteomicsresolvesflagellumsubdomainsandidentifiesflagellumtipspecificproteinsintrypanosomabrucei
AT gallagherjonesmarcus apex2proximityproteomicsresolvesflagellumsubdomainsandidentifiesflagellumtipspecificproteinsintrypanosomabrucei
AT deansamuel apex2proximityproteomicsresolvesflagellumsubdomainsandidentifiesflagellumtipspecificproteinsintrypanosomabrucei
AT wohlschlegeljamesa apex2proximityproteomicsresolvesflagellumsubdomainsandidentifiesflagellumtipspecificproteinsintrypanosomabrucei
AT hillkentl apex2proximityproteomicsresolvesflagellumsubdomainsandidentifiesflagellumtipspecificproteinsintrypanosomabrucei