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Gamon, L. F.

Publications and source records attributed to Gamon, L. F..

2 recordsLinked to original sources

Elevated levels of iodide promote peroxidase-mediated protein iodination and inhibit protein chlorination

At inflammatory sites, immune cells generate oxidants including H2O2. Myeloperoxidase (MPO), released by activated leukocytes employs H2O2 and halide/pseudohalides to form hypohalous acids that mediate pathogen killing. Hypochlorous acid (HOCl) is a major species formed. Excessive or misplaced HOCl formation damages host tissues with this linked to multiple inflammatory diseases. Previously (Redox Biology, 2020, 28, 101331) we reported that iodide (I-) modulates MPO-mediated protein damage by decreasing HOCl generation with concomitant hypoiodous acid (HOI) formation. HOI may however impact on protein structure, so in this study we examined whether and how HOI, from peroxidase/H2O2/I- systems + Cl-, modifies proteins. Experiments employed MPO and lactoperoxidase (LPO) and multiple proteins (serum albumins, anastellin), with both chemical (intact protein and peptide mass mapping, LC-MS) and structural (SDS-PAGE) changes assessed. LC-MS analyses revealed dose-dependent iodination of anastellin and albumins by LPO/H2O2 with increasing I-. Incubation of BSA with MPO/H2O2/Cl- revealed modest chlorination (Tyr286, Tyr475, [~]4%) and Met modification. Lower levels of these species, and extensive iodination at specific Tyr and His residues (>20% modification with >10 {micro}M I-) were detected with increasing I-. Anastellin dimerization was inhibited by increasing I-, but less marked changes were observed with albumins. These data confirm that I- competes with Cl- for MPO and is an efficient HOCl scavenger. These processes decrease protein chlorination and oxidation, but result in extensive iodination. This is consistent with published data on the presence of iodinated Tyr on neutrophil proteins. The biological implications of protein iodination relative to chlorination require further clarification.

biochemistry↗

Ex vivo structures from spinach leaves

Ex vivo structure determination of macromolecules from native source is gaining increasing attention from the scientific community, as the method can be employed to dissect the function of important, multi-component molecular machines. However, the existing ex vivo procedures often require genome manipulation or availability high-affinity binders, limiting the general applicability. Here, we report simple yet robust principles for isolation of protein complexes from enriched native biological material, enabling cryoEM-facilitated high-resolution structure determination. We report the structures of ten separate membrane and soluble protein complexes determined from spinach leaves. Moreover, the developed pipeline is likely adaptable to essentially any biological system. As such, the approach may represent an attractive avenue for future structural proteomics efforts.

biochemistry↗