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Biology subjects

Linares, R.

Publications and source records attributed to Linares, R..

5 recordsLinked to original sources

Small molecule modulator of neuronal lysosome positioning and function resolves Alzheimers Disease-linked pathologies in cultured human neurons

Abnormal increase in axonal lysosome abundance is associated with multiple neurodegenerative diseases including Alzheimers disease. However, the underlying mechanisms and disease relevance are not fully understood. We have recently identified RH1115 as a small molecule modulator of the autophagy-lysosomal pathway that regulates lysosome positioning in neurons. This allowed us to manipulate neuronal lysosome distribution including in axons and interrogate its contribution to both optimal neuronal functioning and to disease pathology. We demonstrate that the small molecule not only rescues aberrant buildup of both axonal autophagic and lysosomal intermediates but also reduces secreted A{beta}42 levels in human iPSC-derived neurons lacking the lysosomal adaptor, JIP3. We thus demonstrate that restoring efficient axonal lysosome transport has an anti-amyloidogenic effect in human neurons and is a promising therapeutic strategy for Alzheimers disease. Furthermore, we show that the small molecule enhances neuronal lysosome degradation, requires the lysosomal adaptor JIP4 to rescue the axonal lysosome pathology in the JIP3 KO neurons and increases levels of the JIP4-interacting lysosomal membrane protein, TMEM55B. Lastly, treatment with the small molecule led to a striking rescue of locomotor defects in JIP3 KO zebrafish larvae. Thus, we have identified a small molecule which can be impactful in neurodegenerative diseases that have a lysosomal pathology and have determined its molecular targets in modulating axonal lysosome abundance.

cell biology↗

About bacteriophage tail terminator and tail completion proteins: structure of the proximal extremity of siphophage T5 tail

Bacteriophages are viruses infecting bacteria. The vast majority of them bear a tail, allowing host recognition, cell wall perforation and DNA injection into the host cytoplasm. Using electron cryo-microscopy (cryo-EM) and single particle analysis, we determined the organisation of the tail proximal extremity of siphophage T5 that possess a long flexible tail, and solved the structure of its tail terminator protein (TrP) p142 (TrP142). It allowed to confirm the common evolutionary origin between T5 TrPp142 and other known or putative TrPs from siphophages, myophages and bacterial tail-like machines, despite very poor sequence conservation. By also determining the structure of T5 tail proximal extremity after interaction with T5 bacterial receptor FhuA, we showed that no conformational changes occur in TrPp142 and confirmed that the infection signal transduction is not carried by the tube itself. We also investigated the location of T5 tail completion protein (TCP) p143 (TCPp143) and showed, thanks to a combination of cryo-EM and structure prediction using Alphafold2, that it is not located at the capsid-to-tail interface as suggested by its position in the genome, but instead, very unexpectedly, on the side of T5 tail tip, and that it appears to be monomeric. Based on structure comparison with other putative TCPs predicted structures, this feature could not be shared by other TCPs. The stoichiometry of the Tape Measure Protein is also discussed. ImportanceBacteriophages, viruses infecting bacteria, are the most abundant living entities on Earth. They are present in all ecosystems where bacteria develop and are instrumental in the regulation, diversity, evolution and pathogeny of microbial populations. Moreover, with the increasing number of pathogenic strains resistant to antibiotics, virulent phages are considered as a serious alternative or complement to classical treatments. 96% of all phages present a tail that allows host recognition and safe channelling of the DNA to the host cytoplasm. We present the atomic model of the proximal extremity of siphophage T5 tail, confirming structural similarities with other phages. This structure, combined to results previously published further explored, also allowed a review and a discussion on the role and localisation of a mysterious tail protein, the Tail Completion Protein, which is known to be present in the phage tails, but that was never identified in a phage structure.

microbiology↗

EasyGrid: A versatile platform for automated cryo-EM sample preparation and quality control

Imaging biological macromolecules in their native state with single-particle cryo-electron microscopy (cryo-EM) or in situ cryo-electron tomography (cryo-ET) requires optimized approaches for the preparation and vitrification of biological samples. Here, we describe EasyGrid, a versatile technology enabling systematic, tailored and advanced sample preparation for cellular and structural biology. This automated, standalone platform combines in-line plasma treatment, microfluidic dispensing, blot-less sample spreading, jet-based vitrification and on-the-fly grid quality control using light interferometry to streamline cryo-EM sample optimization. With EasyGrid, we optimized grid preparation for different purified macromolecular complexes and subsequently determined their structure with cryo-EM. We also demonstrated how the platform allows better vitrification of large, mammalian cells compared to standard plunge-freezing. Automated sample preparation with EasyGrid establishes an advanced, high-throughput platform for both single-particle cryo-EM and cellular cryo-ET sample preparation.

molecular biology↗

Deciphering bacteriophage T5 host recognition mechanism and infection trigger

Bacteriophages, viruses infecting bacteria, recognise their host with high specificity, either binding to saccharide motifs or proteins of the cell wall of their host. In the majority of bacteriophages, this host recognition is performed by Receptor Binding Proteins (RBPs) located at the extremity of a tail. Interaction between the RBPs and the host is the trigger for bacteriophage infection, but the molecular details of the mechanisms are unknown for the majority of bacteriophages. Here, we present the electron cryo-microscopy structure of bacteriophage T5 RBPpb5 in complex with its E. coli receptor, the iron ferrichrome transporter FhuA. Monomeric RBPpb5 is located at the extremity of T5 long flexible tail, and its irreversible binding to FhuA commits T5 to infection. Analysis of RBPpb5 structure within the complex, comparison with its AlphaFold2 predicted structure, and its fit into a previously determined map of T5 tail tip in complex with FhuA allow us to propose a mechanism of transmission of RBPpb5 receptor binding to the straight fibre, initiating the cascade of events that commits T5 to DNA ejection.

biophysics↗

Structural basis of bacteriophage T5 infection trigger and E. coli cell wall perforation

The vast majority of bacteriophages (phages) - bacterial viruses - present a tail that allows host recognition, cell wall perforation and safe channelling of the viral DNA from the capsid to the cytoplasm of the infected bacterium. The majority of tailed phages bears a long flexible tail (Siphoviridae) at the distal end of which a tip complex, often called baseplate, harbours one or more Receptor Binding Protein{middle dot}s (RBPs). Interaction between the RBPs and the host surface triggers cell wall perforation and DNA ejection, but little is known on these mechanisms for Siphoviridae. Here, we present the structure of siphophage T5 tip at high resolution, determined by electron cryo-microscopy, allowing to trace most of its constituting proteins, including 35 C-terminal residues of the Tape Measure Protein. We also present the structure of T5 tip after interaction with its E. coli receptor FhuA reconstituted into nanodisc. It brings out the dramatic conformational changes underwent by T5 tip upon infection, i.e. bending of the central fibre on the side, opening of the tail tube and its anchoring to the membrane, and formation of a transmembrane channel. These new structures shed light on the mechanisms of host recognition and activation of the viral entry for Siphoviridae.

microbiology↗