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Biology subjects

Sousa, P. M. F.

Publications and source records attributed to Sousa, P. M. F..

3 recordsLinked to original sources

A Unified 3D Generative Model for Synthesizable Structure-Based Drug Design

Traditional screening-based drug discovery is inherently limited by the astronomical scale of the chemical space. Generative modelling offers a compelling alternative to the classical search paradigm and enables rational, bottom-up design of novel and target-specific small molecules. However, its impact has been hampered by challenges in synthetic accessibility of the designed compounds and lack of large-scale experimental validation. Here, we introduce LDDM (Large Drug Discovery Model), a generative framework that supports a range of drug discovery tasks, including constrained and unconstrained docking, fragment linking and growing, and de novo design. We further introduce a programmable design algorithm that enables accurate design of synthetically accessible compounds satisfying various fine-grained objectives. We experimentally validated the designed or optimised ligands for five therapeutically relevant protein targets. In all cases, LDDM achieved high success rates, allowing us to identify molecules with confirmed binding affinity while synthesizing only a small number of generated compounds. The best designs were structurally characterised through NMR spectroscopy and X-ray crystallography, demonstrating high prediction accuracy. Overall, LDDM provides a scalable and flexible platform for the rapid and tailored design of small molecules and non-natural peptides for therapeutic applications.

bioinformatics↗

The R2T(P) complex orchestrates the SHQ1 driven early steps of box H/ACA snoRNP maturation

The chaperones RuvBL1 and RuvBL2 are members of the AAA+ ATPase family and participate in diverse cellular processes, including DNA repair, transcriptional regulation, and assembly of macromolecular complexes such as snoRNPs. The biogenesis of box H/ACA snoRNPs additionally requires the assembly factor SHQ1. These protein-RNA complexes are essential for ribosome biogenesis and telomerase stability and are linked to diseases such as dyskeratosis congenita and cancer. Despite detailed knowledge of mature complexes, their assembly mechanisms and how they can be modulated remain unclear. We characterize a trimeric interaction between SHQ1 and RuvBL1:RuvBL2, providing insight into early maturation of the protein-only precursor of box H/ACA snoRNPs. SHQ1 binds the flexible domain II of RuvBL1:RuvBL2, corresponding to the dodecamerization interface, suggesting disruption of this interface and promotion of hexamer formation. We further purified a complex containing RuvBL1:RuvBL2, SHQ1, and DKC1, the catalytic component of H/ACA snoRNPs and a client of SHQ1. This demonstrates that SHQ1 and DKC1 can simultaneously associate with RuvBL1:RuvBL2, potentially facilitating DKC1 release and subsequent snoRNA binding. Additionally, we identified a direct interaction between SHQ1 and RPAP3, a co-chaperone of RuvBL1:RuvBL2 (within the R2TP). Hence, RPAP3 may be responsible for recruiting SHQ1:DKC1 to hexameric RuvBL1:RuvBL2 and/or assist in the AAA+ mediated dissociation of the dimer. Since SHQ1 shares a domain with PIH1D1, an integral member of the R2TP complex, our findings suggest that early H/ACA snoRNP maturation may involve the R2T instead of the previously proposed R2TP complex.

biophysics↗

R2TP-like Quaternary Chaperones: a comprehensive overview to understand the dynamic R2SP complex

The human R2SP complex belongs to the R2TP-like quaternary chaperone family and consists of RUVBL1, RUVBL2, SPAG1 and PIH1D2. R2SP is crucial for the correct assembly of motile cilia (SPAG1 null mutations cause Primary Ciliary Dyskinesia) and the organization of the synaptic zone. RUVBL1/2 ATPases are the powerhouse of this molecular machinery, while SPAG1 and PIH1D2 would be adaptors that interact with specific clients to promote their quaternary assembly. Despite these functional data, little is known about the structure of R2SP and the precise mode of action of these R2TP-like complexes. We have combined biochemical and structural approaches (NMR, structural mass spectrometry and cryo-EM) to investigate the 3D organization of the human R2SP complex, its mode of assembly and ATPase activity. Our study reveals a three-dimensional structure similar to that of the canonical R2TP complex, but also highlights differences in the mode of action of its RUVBL1/2 ATPase core as well as the binding of its adaptors SPAG1 and PIH1D2.

biophysics↗