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Gabriel, H. B.

Publications and source records attributed to Gabriel, H. B..

2 recordsLinked to original sources

Dramatic reduction in trypanosome motility occurs without large-scale changes to paraflagellar rod ultrastructure

Eukaryotic flagella - widely conserved structures involved in signalling, metabolism and motility - have a core microtubular axoneme that, in many organisms, is accompanied by prominent extra-axonemal structures. In kinetoplastids, including human parasites such as trypanosomes and Leishmania, a dense filamentous lattice called the paraflagellar rod (PFR) accompanies the axoneme for most of its length. While functional studies showed that the presence of the core PFR structure is required for normal motility, the evaluation of more subtle roles for the PFR in motility has been hampered by limited functional and localisation data, particularly on components not essential to form the core PFR, such as signalling and metabolism proteins. Here, we addressed these issues by using the genome-wide protein localisation database TrypTag to define a PFR proteome, which was used as a base for a subtler analysis of PFR structure and function. We combined the localisation of fluorescently tagged PFR proteins relative to other cellular components with electron microscopy data on the PFR ultrastructure to localise 81 proteins to specific subdomains of the PFR. Functional analysis of a subset of PFR proteins by gene deletion and RNAi demonstrated that a novel PFR component (PFC21) is required for correct assembly of the outer PFR domain. Importantly, in some single deletion mutants, cell motility was impaired without gross disruption to the core PFR ultrastructure. Thus, our study shows that the PFR has subtle, likely regulatory roles in motility unrelated to any physical constraints that the bulky PFR structure may impose on flagella function.

microbiology↗

Structural studies of cilia and flagella associated protein 410 (CFAP410) reveal its bimodular organization with an N-terminal LRR motif and a C-terminal tetrameric helical bundle

Cilia and flagella associated protein 410 (CFAP410) is a protein localized at the basal body of cilia/flagella and plays essential roles in ciliogenesis. Multiple single amino acid mutations in CFAP410 have been identified in patients. However, the molecular mechanism for how the mutations cause these disorders remains poorly understood due to a lack of high-resolution structures of the protein. Our studies demonstrate that CFAP410 adopts a bimodular architecture. We have previously reported our structural studies on the C-terminal domain (CTD) of CFAP410 from various organisms. Here we report a 1.0-[A] resolution crystal structure of the N-terminal domain (NTD) of Trypanosoma brucei CFAP410. We further examined how the disease-causing mutations in this domain may affect the folding and structural stability of CFAP410. Our results suggest that the single-residue mutations in the CFAP410-NTD cause human diseases by destabilizing the structure that subsequently disrupts its interaction with other partners.

biochemistry↗