Logo Lanfrica
  • Home
  • Atlas
  • Insights
  • Docs
  • Sign in

© 2026 Lanfrica. All rights reserved. All copyrights of the resources shown on the Lanfrica website belong to the original copyright holders, unless explicitly stated otherwise.

The structure of serum resistance-associated protein and its implications for human African trypanosomiasis.

Domain:

healthcare

Record type:

paper
Creator:
ZolLanMehSch
Editor:
ApoUni
Publisher:
Springer Nature
Host:avatar
Only two trypanosome subspecies are able to cause human African trypanosomiasis. To establish an infection in human blood, they must overcome the innate immune system by resisting the toxic effects of trypanolytic factor 1 and trypanolytic factor 2 (refs. 1,2). These lipoprotein complexes contain an active, pore-forming component, apolipoprotein L1 (ApoL1), that causes trypanosome cell death 3 . One of the two human-infective subspecies, Trypanosoma brucei rhodesiense, differs from non-infective trypanosomes solely by the presence of the serum resistance-associated protein, which binds directly to ApoL1 and blocks its pore-forming capacity3-5. Since this interaction is the single critical event that renders T. b. rhodesiense human- infective, detailed structural information that allows identification of binding determinants is crucial to understand immune escape by the parasite. Here, we present the structure of serum resistance-associated protein and reveal the adaptations that occurred as it diverged from other trypanosome surface molecules to neutralize ApoL1. We also present our mapping of residues important for ApoL1 binding, giving molecular insight into this interaction at the heart of human sleeping sickness.

Visit

doi.orgwww.repository.cam.ac.uk

Tags

Apolipoprotein L1CrystallizationDNA Mutational AnalysisHumansMembrane GlycoproteinsProtein BindingProtozoan ProteinsTrypanosoma brucei rhodesienseTrypanosomiasis, African

Similar

Drug development for human African trypanosomiasis targeting its cyanide-insensitive respirationThe nitroimidazoles and human African trypanosomiasisStructure-function relationships of brazzein, a sweet-tasting protein and its interactions with the human sweet taste receptorHuman and animal African trypanosomiasis.Identification and Characterization of FTY720 for the Treatment of Human African TrypanosomiasisWhose Elimination? Frontline Workers’ Perspectives on the Elimination of the Human African Trypanosomiasis and Its Anticipated Consequences

Drug development for human African trypanosomiasis targeting its cyanide-insensitive respiration

The nitroimidazoles and human African trypanosomiasis

Structure-function relationships of brazzein, a sweet-tasting protein and its interactions with the human sweet taste receptor

International audience Brazzein is a small heat- and pH-stable sweet-tasting protein

Human and animal African trypanosomiasis.

Abstract This chapter describes the evolution of a One Health approach - the Stamp Out Sle

Identification and Characterization of FTY720 for the Treatment of Human African Trypanosomiasis

ABSTRACT The screening of a focused library identified FTY720 (Fingolimod;

Whose Elimination? Frontline Workers’ Perspectives on the Elimination of the Human African Trypanosomiasis and Its Anticipated Consequences

While academic literature has paid careful attention to the technological efforts―drugs, tests, and