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Jajcanin Jozic, N.

Publications and source records attributed to Jajcanin Jozic, N..

2 recordsLinked to original sources

The rhomboid-like pseudoprotease TMEM115 defines a two-factor mechanism for Rab6A effector recruitment

Protein trafficking and organelle identity depends on precise localisation of membrane proteins, anchored by small GTPases that bind to specific cellular compartments. Here we show that the rhomboid-like pseudoprotease TMEM115 defines an unexpected two-factor system with Rab6A to target the golgin TMF1. In the absence of TMEM115, TMF1 is delocalised from the rim of the Golgi apparatus; instead, it is retained in Golgi-targeting vesicles. TMEM115, TMF1, and Rab6A assemble into a ternary complex which, in striking contrast to canonical rhomboid-like mechanisms, is independent of transmembrane domain interactions. Disruption of the TMEM115-Rab6A-TMF1 complex affects the efficiency of trafficking of proteins from the Golgi; moreover, human disease-associated mutations target the interfaces of this ternary complex, thereby delocalising TMF1 from the Golgi. Finally, loss of TMEM115 in Drosophila causes abnormal Golgi morphology, and mouse knockouts undergo perinatal death. We propose that two-factor effector recruitment defines a mechanism for precise Rab GTPase-mediated membrane targeting.

cell biology↗

Mass photometry reveals stoichiometry and binding dynamics of bispecific tetravalent anti-VEGF-PD-1 antibody ivonescimab

BackgroundThe bispecific antibody ivonescimab targets programmed cell death protein 1 (PD-1) and vascular endothelial growth factor (VEGF). Recent clinical trials have shown it has greater efficacy against PD-L1 positive non-small cell lung cancer than pembrolizumab (Keytruda), a frequently prescribed anti-PD-1 monoclonal antibody. Ivonescimab binds to two VEGF and two PD-1 molecules, with complex formation through higher-order structure formation (or daisy chain binding). However, the binding stoichiometries and interaction dynamics of ivonescimab with VEGF and PD-1 have not been characterized in depth. MethodsWe used mass photometry (MP) and kinetic modelling to analyze these interactions, quantifying the complexes formed and their affinities. Dissociation constants (KD) for ivonescimabs binding to VEGF and PD-1 were calculated from equilibrium counts and real-time measurements, respectively. ResultsVEGF drove oligomerization of ivonescimab, which bound VEGF predominantly in a 2:2 stoichiometry, with KD=0.08 nM. Higher-order oligomeric complexes, present only at low abundance, displayed markedly weaker affinities (3.17 nM; 1.29 nM). Ternary complexes of ivonescimab with its two targets consistently presented two PD-1 antigens for each ivonescimab molecule, with a 1.66 nM KD for the binding of the first PD-1 and the slightly stronger 0.89 nM for the second PD-1 molecule. ConclusionsMP confirmed VEGF-induced ivonescimab oligomerization and revealed that dimers, not higher-order structures, were the most stable stoichiometry. MP enables detailed analysis of antibody-antigen interactions, even for bispecific antibodies that interact with antigens with complex stoichiometries. Statement of significanceWe report the first application of mass photometry to characterize the binding of the clinically promising bispecific antibody ivonescimab to its targets, VEGF and PD-1. The most stable assembly is a dimeric complex, not higher-order, as expected - advancing understanding of ivonescimab and demonstrating mass photometrys value for complex biologics analysis.

biophysics↗