bioRxiv Science⌕ Search

Biology subjects

Zoll, S.

Publications and source records attributed to Zoll, S..

3 recordsLinked to original sources

A selective alternative pathway complement inhibitor for treatment of paroxysmal nocturnal hemoglobinuria

The complement system, a critical component of the human innate immune system, enhances the ability to clear microbes and damaged cells. Dysregulation of this system, particularly the alternative pathway (AP), can lead to several rare blood disorders such as paroxysmal nocturnal hemoglobinuria (PNH). This study introduces SH-01, a blood parasite-derived, novel recombinant protein which selectively inhibits the AP. We show that SH-01 effectively prevents the lysis of erythrocytes isolated from PNH patients. Unlike current treatments such as eculizumab, SH-01 targets the AP without impairing the classical or lectin pathways, reducing the risk of infections and extravascular hemolysis. SH-01 functions through a unique two-stage mechanism, preventing C3b deposition and inhibiting AP C5 convertase activity while maintaining the amplification loops functionality. Immunization studies in mice showed no significant immune response against SH-01, and the protein exhibited high stability and no acute toxicity. These findings suggest SH-01 as a promising candidate for treatment of PNH and other diseases characterized by AP hyperactivation, offering a more targeted therapeutic and thus safer approach.

immunology↗

Beyond the VSG Layer: Exploring the Role of Intrinsic Disorder in the Invariant Surface Glycoproteins of African Trypanosomes

In the bloodstream of mammalian hosts, African trypanosomes face the challenge of protecting their invariant surface receptors from immune detection. This crucial role is fulfilled by a dense, glycosylated protein layer composed of variant surface glycoproteins (VSGs), which undergo antigenic variation and provide a physical barrier that shields the underlying invariant surface glycoproteins (ISGs). The protective shields limited permeability comes at the cost of restricted access to the extracellular host environment, raising questions regarding the specific function of the ISG repertoire. In this study, we employ an integrative structural biology approach to show that intrinsically disordered membrane-proximal regions are a common feature of members of the ISG superfamily, conferring the ability to switch between compact and elongated conformers. While the folded, membrane-distal ectodomain is buried within the VSG layer for compact conformers, their elongated counterparts would enable the extension beyond it. This dynamic behavior enables ISGs to maintain a low immunogenic footprint while still allowing them to engage with the host environment when necessary. Our findings add further evidence to a dynamic molecular organization of trypanosome surface antigens wherein intrinsic disorder underpins the characteristics of a highly flexible ISG proteome to circumvent the constraints imposed by the VSG coat.

biochemistry↗

Structural Insights into the Interaction Between Adenovirus C5 Hexon and Human Lactoferrin

Adenovirus (AdV) infection of the respiratory epithelium is common, but poorly understood. Human AdV species C types, such as HAdV-C5, utilize the Coxsackie-adenovirus receptor (CAR) for attachment and subsequently integrins for entry. CAR and integrins are however located deep within the tight junctions in the mucosa where they would not be easily accessible. Recently, a model for CAR-independent AdV entry was proposed. In this model, human lactoferrin (hLF), an innate immune protein, aids the viral uptake into epithelial cells by mediating interactions between the major capsid protein, hexon, and yet unknown host cellular receptor(s). However, a detailed understanding of the molecular interactions driving this mechanism is lacking. Here, we present a new cryo-EM structure of HAdV-5C hexon at high resolution alongside a hybrid structure of HAdV-5C hexon complexed with human lactoferrin (hLF). These structures reveal the molecular determinants of the interaction between hLF and HAdV-C5 hexon. hLF engages hexon primarily via its N-terminal lactoferricin (Lfcin) region, interacting with hexons hypervariable region 1 (HVR-1). Mutational analyses pinpoint critical Lfcin contacts and also identify additional regions within hLF that critically contribute to hexon binding. Our study sheds more light on the intricate mechanism by which HAdV-C5 utilizes soluble hLF/Lfcin for cellular entry. These findings hold promise for advancing gene therapy applications and inform vaccine development.

biochemistry↗