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Abdelhamid, M. A. S.

Publications and source records attributed to Abdelhamid, M. A. S..

5 recordsLinked to original sources

Fluorescence cross-correlation spectroscopy quantifies affinity, cooperativity, and kinetic stability in ternary protein complexes

Many biological processes and emerging therapeutic modalities rely on higher-order protein complexes whose properties cannot be predicted from their constituent binary interactions. However, methods for directly quantifying affinity, cooperativity, and kinetic stability within such assemblies remain limited. Here, we establish fluorescence cross-correlation spectroscopy (FCCS) as a solution-phase approach for characterizing multicomponent protein interactions and apply it to the clinically important HER2-targeting antibodies trastuzumab and pertuzumab. Using fluorescently labelled HER2, trastuzumab, and pertuzumab, we quantified binary binding affinities, directly measured ternary complex formation, and characterized the dissociation kinetics of binary and ternary complexes. FCCS measurements revealed positive cooperativity in the formation of the HER2-trastuzumab-pertuzumab ternary complex, while dissociation experiments demonstrated that the ternary complex is kinetically more stable than the corresponding binary interactions. Together, these findings provide direct solution-phase evidence that cooperative interactions stabilize the HER2-trastuzumab-pertuzumab complex, offering a molecular explanation for the enhanced efficacy of dual HER2 targeting in cancer therapy. More broadly, this work demonstrates that FCCS can robustly quantify affinity, cooperativity, and kinetic stability of multicomponent protein complexes using a commercially available platform. We provide a broadly accessible framework for studying higher-order protein interactions and supporting the development of next-generation multispecific and combination therapeutics. Significance StatementMany proteins function as part of multicomponent complexes, yet most experimental methods characterize interactions only one pair at a time, or indirectly through secondary reporters, or necessitating saturation of binary interactions first. We show that fluorescence cross-correlation spectroscopy can directly quantify how multiple binding partners interact simultaneously by measuring affinity, cooperativity, and kinetic stability in solution. Applying this approach to the clinically important HER2-targeting antibodies trastuzumab and pertuzumab reveals cooperative stabilization of their ternary complex. Because the measurements are performed on a commercially available instrument and require no surface immobilization, this broadly accessible method should facilitate mechanistic studies of complex biomolecular interactions and aid the development of multispecific and combination therapeutics.

biophysics↗

DNA damage induces long range changes to duplex structure - a non-protein start to damage detection?

DNA-binding proteins must quickly locate specific sites on DNA to enable replication, repair, and transcription. While sequence-specific recognition is well understood, the physical basis of structure-specific recognition remains unclear, limiting our understanding of DNA damage repair. Proteins must distinguish damaged sites within largely undamaged DNA; however, studying this is challenging due to DNAs dynamic nature. We hypothesised that DNA damage causes changes in DNA structure, signalling protein recruitment. Using confocal single-molecule FRET, we analysed seven DNA duplexes containing modifications such as ribonucleotide, 8-oxoguanine (8-oxoG), abasic sites, nicks, and gaps, which are all involved in the base excision repair (BER) pathway. Each construct was measured with nine dye pairs in triplicate to capture changes in bending, twisting, and stretching. An automated analysis pipeline processed 162 measurements, enabling rigorous statistical comparisons. All modifications altered FRET efficiencies compared to undamaged DNA, including the subtlest change: a single oxygen difference (ribo-vs deoxyribonucleotide). Abasic sites, nicks, and gaps had the greatest effects. These findings provide direct evidence that DNA damage affects duplex structure and dynamics beyond the lesion site, suggesting DNA flexibility changes may act as an early signal for repair protein recruitment. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=102 SRC="FIGDIR/small/709887v1_ufig1.gif" ALT="Figure 1"> View larger version (30K): org.highwire.dtl.DTLVardef@a85839org.highwire.dtl.DTLVardef@3813dborg.highwire.dtl.DTLVardef@19fa06aorg.highwire.dtl.DTLVardef@dc9729_HPS_FORMAT_FIGEXP M_FIG C_FIG

biophysics↗

A new protein-dependent riboswitch activates ribosomal frameshifting

Programmed -1 ribosomal frameshifting (PRF) is a translational control mechanism used by RNA viruses to regulate the relative abundance of proteins encoded in different reading frames. Cardioviruses exhibit the highest known PRF efficiency, with ~85% of ribosomes shifting into the -1 frame. This unusual event requires an interaction between the viral 2A protein and a stimulatory element in the RNA genome, but the basis for protein-dependence is unclear. To address this, here we investigate structure and dynamics of the PRF signal in Theiler's murine encephalitis virus (TMEV). By combining X-ray crystallography, small angle X-ray scattering (SAXS) and single-molecule fluorescence resonance energy transfer (smFRET), we show that 2A binding switches the RNA from a stem-loop conformation into a pseudoknot, and we demonstrate that pseudoknot formation is essential for efficient PRF in vitro and in cells. Together, these findings illustrate how the cardiovirus PRF element behaves as a protein-dependent riboswitch, defining the molecular mechanism by which frameshifting is conditionally activated.

molecular biology↗

Kinesin-1 is highly flexible and adopts an open conformation in the absence of cargo

Kinesin-1 is an essential anterograde microtubule motor protein. The core kinesin motor is a homodimer of two heavy chains; N-terminal motor domains hydrolyse ATP and walk along microtubules, whilst a long elongated coiled-coil stalk and an intrinsically disordered C-terminal tail region bind cargos. Kinesin autoinhibition is key to preventing futile ATP consumption and occurs, at least in part, through direct interactions between N-terminal motor domains and C-terminal inhibitory motifs. Despite significant advances in our understanding of kinesin walking, little is known about the kinesin-1 conformational landscape of the stalk and tail domains. Here we apply solution based biophysical analysis tools to study conformational changes in kinesin-1, with full rotational freedom, and in response to changes in ionic strength, mutations, and the presence of microtubules. This has allowed us to uncover the inherent flexibility in kinesin-1 which gives insights into autoinhibition and the regulation of intracellular transport.

biophysics↗

Rep structures can be tuned by ionicity via metastable intermediates in the absence of DNA

DNA helicases undergo conformational changes; however, their structural dynamics are poorly understood. Here, we study single molecules of superfamily 1A DNA helicase Rep, which undergo conformational transitions during bacterial DNA replication, repair and recombination. We use time-correlated single-photon counting (TCSPC), fluorescence correlation spectroscopy (FCS), rapid single-molecule Forster resonance energy transfer (smFRET), Anti-Brownian ELectrokinetic (ABEL) trapping and molecular dynamics simulations (MDS) to provide unparalleled temporal and spatial resolution of Reps domain movements. We detect four states revealing two hitherto hidden intermediates (S2, S3), between the open (S1) and closed (S4) structures, whose stability is salt dependent. Reps open-to-closed switch involves multiple changes to all four subdomains 1A, 1B, 2A and 2B along the S1[->]S2[->]S3[->]S4 transitional pathway comprising an initial truncated swing of 2B which then rolls across the 1B surface, following by combined rotations of 1B, 2A and 2B. High forward and reverse rates for S1[->]S2 suggest that 1B may act to frustrate 2B movement to prevent premature Rep closure in the absence of DNA. These observations support a more general binding model for accessory DNA helicases that utilises conformational plasticity to explore a multiplicity of structures whose landscape can be tuned by salt prior to locking-in upon DNA binding.

biophysics↗