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Biology subjects

Bertolini, M.

Publications and source records attributed to Bertolini, M..

8 recordsLinked to original sources

Macrocyclic phage display for identification of selective protease substrates

Traditional methods for identifying selective protease substrates have primarily relied on synthetic libraries of linear peptides, which offer limited sequence and structural diversity. Here, we present an approach that leverages phage display technology to screen large libraries of chemically modified cyclic peptides, enabling the identification of highly selective substrates for a protease of interest. Our method uses a reactive chemical linker to cyclize peptides on the phage surface, while simultaneously incorporating an affinity tag and a fluorescent reporter. The affinity tag enables capture of the phage library and subsequent release of phages expressing optimal substrates upon incubation with a protease of interest. The addition of a turn-on fluorescent reporter allows direct quantification of cleavage efficiency throughout each selection round. The resulting identified substrates can then be chemically synthesized, optimized and validated using recombinant enzymes and cells. We demonstrate the utility of this approach using Fibroblast Activation Protein alpha (FAP) and the related proline-specific protease, dipeptidyl peptidase-4 (DPP4), as targets. Phage selection and subsequent optimization identified substrates with selectivity for each target that have the potential to serve as valuable tools for applications in basic biology and fluorescence image-guided surgery (FIGS). Overall, our strategy provides a rapid and unbiased platform for effectively discovering highly selective, non-natural protease substrates, overcoming key limitations of existing methods.

biochemistry↗

Identification of Covalent Cyclic Peptide Inhibitors Targeting Protein-Protein Interactions Using Phage Display

Peptide macrocycles are promising therapeutics for a variety of disease indications due to their overall metabolic stability and potential to make highly selective binding interactions with targets. Recent advances in covalent macrocycle peptide discovery, driven by phage and mRNA display methods, have enabled the rapid identification of highly potent and selective molecules from large libraires of diverse macrocycles. However, there are currently limited examples of macrocycles that can be used to disrupt protein-protein interactions and even fewer examples that function by formation of a covalent bond to a target protein. In this work, we describe a directed counter-selection method that enables identification of covalent macrocyclic ligands targeting a protein-protein interaction using a phage display screening platform. This method utilizes binary and ternary screenings of a chemically modified phage display library, employing the stable and weakly reactive aryl fluorosulfate electrophile. We demonstrate the utility of this approach using the SARS-CoV-2 Spike-ACE2 protein-protein interaction and identify multiple covalent macrocyclic inhibitors that disrupt this interaction. The resulting compounds displayed antiviral activity against live virus that was irreversible after washout due to the covalent binding mechanism. These results highlight the potential of this screening platform for developing covalent macrocyclic drugs that disrupt protein-protein interactions with long lasting effects.

microbiology↗

Perceived stress exacerbates psoriasis in human skin in vivo: Insights from a humanized psoriasis mouse model

IntroductionThe widely held belief that psychoemotional stress triggers or exacerbates psoriatic skin lesions lacks sufficient scientific evidence. This study investigated this concept using a psoriasis humanized mouse model. MethodsHealthy human skin was grafted onto SCID/beige mice (n=25), and one month later, psoriatic lesions were induced by intradermal injection of autologous, in vitro IL-2- preactivated PBMCs. Following lesion development, topical dexamethasone (DEX) was applied to induce lesion remission. After lesions disappeared, the mice were exposed to either sonic or sham stress for 24 hours. ResultsSonic stress led to the relapse of psoriatic lesions in all human skin xenografts within 14 days. This relapse was associated with significant changes in psoriasis-related skin characteristics: increased epidermal thickness, K16 expression, keratinocyte proliferation, antimicrobial peptide expression (S100A7, h{beta}2-defensin), and immune activation markers (HLA-DR, ICAM-1, CD1d, MICA-NKG2D). Additionally, epidermal and dermal immune cells (CD3+, CD8+, CD11c+, CD56+, ILC3, c-KIT+ or tryptase+ cells) and psoriasis-associated pro-inflammatory mediators (CXCL10, IL-22, IL-15, IL-17A/F, IFN-{gamma}, and TNF) were found to be increased. Neurogenic inflammation biomarkers (NGF, NK1-R, and substance P) were also significantly upregulated in stressed mice. Treatment with the FDA-approved neurokinin-1 receptor antagonist, aprepitant, prevented stress-induced psoriatic relapses in 4 out of 5 mice and normalized most inflammatory and neurobiological markers. ConclusionsThese findings provide novel, conclusive evidence that perceived stress can trigger psoriatic lesions in human skin xenografts in vivo and highlight the role of substance P-dependent neurogenic inflammation in this process.

immunology↗

Co-translational ribosome pairing enables native assembly of misfolding-prone subunits

Protein complexes are pivotal to most cellular processes. Emerging evidence indicates that pairs of ribosomes ubiquitously drive the synchronized synthesis and assembly of two protein subunits into homodimeric complexes1-5. These observations suggest protein folding mechanisms of general importance enabled by contacts between nascent chains6,7 - which have thus far rather been considered detrimental8,9. However, owing to their dynamic and heterogeneous nature, the folding of interacting nascent chains remains unexplored. Here, we show that co-translational ribosome pairing allows their nascent chains to chaperone each other, thus enabling the formation of coiled-coil homodimers from subunits that misfold individually. We developed an integrated single-molecule fluorescence and force spectroscopy approach to probe the folding and assembly of two nascent chains extending from nearby ribosomes, using the intermediate filament lamin as a model system. Ribosome proximity in early translation stages was found to be critical: when interactions between nascent chains are inhibited or delayed, they become trapped in stable misfolded states that are no longer assembly competent. Conversely, early interactions allow the two nascent chains to nucleate native-like quaternary structures that grow in size and stability as translation advances. We conjecture that protein folding mechanisms enabled by ribosome cooperation are more broadly relevant to intermediate filaments and other protein classes.

molecular biology↗

Involvement of ILC1-like innate lymphocytes in human autoimmunity, lessons from alopecia areata

Here, we have explored the involvement of innate lymphoid cells-type 1 (ILC1) in the pathogenesis of alopecia areata (AA), because we found them to be significantly increased around lesional and non-lesional HFs of AA patients. To further explore these unexpected findings, we first co-cultured autologous circulating ILC1-like cells (ILC1lc) with healthy, but stressed, organ-cultured human scalp hair follicles (HFs). ILClc induced all hallmarks of AA ex vivo: they significantly promoted premature, apoptosis-driven HF regression (catagen), HF cytotoxicity/dystrophy and most important for AA pathogenesis, collapse of the HFs physiological immune privilege. NKG2D-blocking or IFN{gamma}-neutralizing antibodies antagonized this. In vivo, intradermal injection of autologous activated, NKG2D+/IFN{gamma}-secreting ILC1lc into healthy human scalp skin xenotransplanted onto SCID/beige mice sufficed to rapidly induce characteristic AA lesions. This provides the first evidence that ILC1lc suffice to induce AA in previously healthy human HFs ex vivo and in vivo, and further questions the conventional wisdom that AA is always an autoantigen-dependent, CD8+ T cell-driven autoimmune disease.

immunology↗

Translational Activity Controls Ribophagic Flux and Turnover of Distinct Ribosome Pools

Ribosomes are among the most abundant and complex machineries in the cell, however, the turnover of their subunits remains poorly understood. Here, we apply proteomic flux and cryo-electron microscopy analyses to interrogate the ribosome life cycle in human cells. We show that subpopulations of ribosomal subunits coexist, which vary in turnover kinetics and structure. Specifically, 80S ribosomes have a much longer half-life than free 40S and 60S ribosomal subunits, indicating that they represent distinct subunit pools that poorly intermix. Translation inhibition starkly increases the pool-size of 80S ribosomes in a translationally idle state and induces ribophagy of old ribosomes, ultimately rejuvenating the ribosome fleet. Our findings provide a comprehensive model for ribosome turnover and its regulation via translational activity.

biochemistry↗

Interferon regulates stem cell output via post-transcriptional repression of Sox2 independent of its antiviral function in the brain

Stem cells show intrinsic interferon signalling, which protects them from viral infections at all ages. In the ageing brain, interferon signalling in stem cells also reduces their ability to activate. Whether these functions are linked and at what time interferons start taking on a role in stem cell functioning is unknown. Additionally, the molecular link between interferons and activation in neural stem cells and how this relates to productivity is not well understood. Here we combine single-cell transcriptomics, RiboSeq and animal models of interferon to show that this pathway is important for proper stem cell function at all ages. Interferon orchestrates cell cycle and mTOR activity to post-transcriptionally repress Sox2 and drive the exit from stem cell activation. The interferon response then decreases in the subsequent maturation states. Mathematical simulations indicate that this regulation is beneficial for the young and harmful for the old brain. Our study establishes molecular mechanisms of interferon in stem cells and interferons as genuine regulators of stem cell homeostasis and a potential therapeutic target to repair the ageing brain.

neuroscience↗

Alopecia areata patients show deficiency of FOXP3+CD39+ T regulatory cells and clonotypic restriction of Treg TCR?-chain, which highlights the immunopathological aspect of the disease

Alopecia areata (AA) is a hair loss disorder resulting from an autoimmune reaction against hair follicles. T-helper 1 cells are a major contributor to this disorder, but little is known about the role of T-regulatory cells (Tregs) in AA. Here, we analysed the distribution of circulating Treg subsets in twenty AA patients with active hair loss and fifteen healthy subjects by flow cytometry. The Treg suppressor HLA-DR+ subpopulation was significantly reduced in the patients (P<0.001) and there were significantly fewer cells expressing CD39 among the CD4+CD25+Foxp3+ Treg subpopulation in patients (P=0.001). FOXP3 CD39 Treg cells were also reduced in hair follicles; by 75% in non-lesional skin and 90% in lesional skin, when compared to control healthy skin. To further characterise Treg cells in AA; Tregs (CD4+CD25+FOXP3+) were investigated for their TCR{beta} sequence. PCR products analysed by Next Generation Sequencing techniques, showed that all frequent public clonotypes in AA Tregs were also present in controls at relatively similar frequencies, excepting two public clonotypes: CATSRDEGGLDEKLFF (V15 D1 J1-4) and CASRDGTGPSNYGYTF (V2 D1 J1-2), which were exclusively present in controls. This suggests that these Treg clonotypes may have a protective effect and that they may be an exciting subject for future therapeutic applications.

immunology↗