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Biology subjects

Munoz, I. M.

Publications and source records attributed to Munoz, I. M..

4 recordsLinked to original sources

A PLK1-Directed Mitotic Genome Maintenance Network Promotes DNA Synthesis in Mitosis

Polo-like kinase 1 (PLK1) is a master regulator of mitosis and is known to dictate DNA repair pathway choice at this stage of the cell cycle. However, its roles in controlling mitotic DNA damage responses remain incompletely characterised. Here, we used acute PLK1 inhibition as a substrate-trapping strategy to stabilise PLK1-target interactions in mitotic cells and identify PLK1-associated DNA repair factors. Proteomic analysis of endogenous HA-tagged PLK1 complexes revealed interactions with multiple genome stability proteins, including SLX4, RAD52, FANCM, and REV1. We demonstrate that PLK1 binds SLX4 and RAD52 via canonical CDK1-dependent phospho-docking motifs centred on SLX4 Ser1453 and RAD52 Thr300. Mutation of these residues abolished PLK1 binding and, at least for RAD52, prevented PLK1-dependent phosphorylation of mitotic targets. Functional analyses showed that PLK1 docking to SLX4 is dispensable for interstrand crosslink repair but essential for mitotic DNA synthesis (MiDAS), defining a separation-of-function allele. Likewise, disruption of PLK1 docking to RAD52 impaired MiDAS. Together, these findings identify PLK1 as a key coordinator of mitotic genome maintenance pathways required for MiDAS.

cell biology↗

NEK1 autophosphorylation is disrupted by amyotrophic lateral sclerosis-associated missense variants: activity biomarkers and structural insights

Rare variants in NEK1, encoding a serine/threonine kinase, are amongst the most consistently implicated genetic contributors to amyotrophic lateral sclerosis (ALS), reported in approximately 2-3% of cases. Yet, whilst recent studies have characterised the cell biological consequences of NEK1 loss-of-function, the biochemical effects of ALS-associated missense variants on kinase activity have not been directly investigated. This distinction is mechanistically important, because missense alleles encode mutant proteins rather than simply reducing protein dosage. Here, we provide the most comprehensive cell-based phosphoproteomic map of NEK1 phosphorylation to date, identifying ten recurrent phosphorylation sites across independent expression and acquisition conditions. We experimentally assign pSer14, pThr156 and pSer418 as NEK1 autophosphorylation sites using kinase-dead controls, targeted extracted ion chromatogram analysis, phosphosite mutagenesis and phosphospecific antibodies. Leveraging activation-loop pThr156 as a readout of NEK1 activity, we assessed nine ALS-associated missense variants spanning the major functional regions of the protein. Amongst catalytic-domain variants, R261C produced the most robust reduction in pThr156 autophosphorylation, R232C produced a smaller reduction, and R232H increased pThr156; the basic-region variant, A313T, also showed a smaller reduction. Structural modelling provides a mechanistic framework for understanding these variant-specific effects. Our study establishes the first activity-based framework for functional classification of NEK1 missense variants, and provides direct evidence that ALS-associated missense variants can alter NEK1 autophosphorylation through a mechanism distinct from simple haploinsufficiency. The phosphospecific antibodies, isogenic cell lines and curated phosphoproteomic datasets generated here provide a community resource for future studies of NEK1 regulation, variant interpretation and therapeutic target validation.

neuroscience↗

Decoding real world visual scenes from the human gamma band with flicker evoked oscillations.

Current approaches to investigate the role of neural oscillations in natural scene processing have been limited to artificial stimuli and long data collection. We present a new way to decode real-world scenes participants are viewing from the steady-state visual evoked potentials (SSVEPs) evoked while wearing flickering LCD glasses. We discovered that SSVEP responses from real world scenes are surprisingly complex and have distinct waveform shapes: they differ markedly across scenes and participants but are consistent within individuals, even across multiple days. SSVEP shape varies greatly between stimuli, but is reliable, meaning that decoding works even with a single electrode. Decoding is highly accurate with 5-10 seconds of data and was still above chance level with less than a second of data. Decomposing the SSVEPs into frequency bands showed that the information about the visual scene is present across all of the harmonics of the flicker frequency, but with 40 Hz (gamma band) showing the highest amount of information across the different flicker frequencies tested. These findings implicate a broad range of oscillations in encoding real-world scenes, with a particular importance for 40 Hz. The SSVEPs temporal profile is a rich source of information for decoding.

neuroscience↗

An allosteric switch between the activation loop and a c-terminal palindromic phospho-motif controls c-Src function

Auto-phosphorylation controls the transition between discrete functional and conformational states in protein kinases, yet the structural and molecular determinants underlaying this fundamental process remain unclear. Here we show that c-terminal Tyr 530 is a de facto c-Src auto-phosphorylation site with slow time-resolution kinetics and strong intermolecular component. On the contrary, activation-loop Tyr 419 undergoes fast kinetics and a cis-to-trans phosphorylation-switch that controls c-terminal Tyr 530 auto-phosphorylation, enzyme specificity and strikingly, c-Src non-catalytic function as a substrate. In line with this, we visualize by X-ray crystallography a snapshot of Tyr 530 intermolecular phosphorylation in which a c-terminal palindromic phospho-motif flanking Tyr 530 on the susbtrate molecule engages the P-loop of the active kinase for ready entry prior catalysis. Perturbation of the phospho-motif accounts for c-Src disfunction as indicated by viral and a colorectal cancer (CRC) associated c-terminal deleted variants. We show that c-terminal residues 531 to 536 are required for c-Src Tyr 530 and global auto-phosphorylation, and this detrimental effect is caused by the susbtrate molecule inhibiting allosterically the active kinase. Our work reveals a bi-directional crosstalk between the activation and c-terminal segments that controls the allosteric interplay between susbtrate and enzyme acting kinases during auto-phosphorylation HighlightsO_LIA bi-directional phospho-switch connecting the activation and c-terminal segments controls c-Src function C_LIO_LIActivation-loop Tyr 419 is required for c-terminal Tyr 530 auto-phosphorylation, enzyme specificity and non-catalytic function as a substrate C_LIO_LIBiochemical and structural visualization of c-Src Tyr 530 intermolecular auto-phosphorylation C_LIO_LIA double-phosphorylated c-Src on both the activation and c-terminal segments is a fully active protein C_LIO_LICancer associated c-terminal deleted variants inhibit allosterically c-Src activity by a dominant negative effect C_LI

biochemistry↗