Praziquantel (PZQ) is currently the only agent for treating schistosomiasis, but it is plagued by suboptimal efficacy to juvenile parasites, looming drug resistance, and inability to prevent reinfection. Thioredoxin glutathione reductase (TGR) is regarded as a promising therapeutic target due to its essential role in maintaining schistosome redox homeostasis. Herein, the crystal structures of Schistosoma japonicum TGR (SjTGR) in multiple redox states and in complex with NADPH, GSH, and the anti-helminthic agent Auranofin were elucidated. Structural analyses identified the hook-shaped conformation at the C-terminal redox center, which DTNB assays further confirmed enhances electron transfer efficiency. Structural and ITC data indicated that R317 was critical for NADPH binding via hydrogen-bond interactions. The analysis also indicated that the structure basis of Auranofin's potency was its tripartite interaction at the redox-active sites. In addition, we investigated the substrate specificity of SjTrx1i and SjTRP14, downstream proteins regulated by SjTGR, and elucidated the structural basis for this specificity by determining their oxidized/reduced structures. Furthermore, in vivo RNAi indicated knockdown of SjTGR or SjTRP14 blocked the survival and oviposition of schistosomes, thus ameliorating egg-induced granulomatous pathology in mice. This work provided a framework for knowledge-based design of novel anti-schistosomals targeting parasite-specific redox vulnerabilities.
Polycomb Repressive Complex 2 (PRC2) and C-terminal binding proteins 1 and 2 (CtBP1/2) are key epigenetic regulators that frequently co-occupy chromatin, yet their crosstalk remains poorly understood. Here, we delineate the molecular basis of the interaction between CtBP1/2 and the N-terminal domain of PALI1, an accessory subunit of PRC2. The PALI1 N-terminus contains two DLS-like motifs that bind CtBP1/2 bivalently, enhancing affinity and promoting higher-order oligomerization. Conversely, disruption of CtBP1/2 oligomerization weakens PALI1 binding, revealing a reciprocal mechanism stabilizing the CtBP1/2-PALI1 complex. The 2.20 Å structure of the CtBP1-PALI1 complex reveals the detailed interaction interface, which, together with biochemical data, supports a model where tandem DLS-like motifs drive CtBP1/2 oligomerization and multivalent engagement. Through its C-terminal PRC2-binding domain, PALI1 acts as a dual-interface scaffold linking CtBP1/2 and PRC2, providing a structural framework for their coordinated chromatin recruitment and transcriptional repression.
IQSEC2, a high-confidence neurodevelopmental disorder risk gene product, is essential for neuronal development and synaptic plasticity. Previous studies established that IQSEC2 dynamically regulates synaptic signaling via Ca2+-dependent release of autoinhibition. In this study, using in vivo mouse models and in vitro biochemistry approaches, we discover that IQSEC2 orchestrates postsynaptic density assembly and dynamics via Ca2+-triggered phase separation. Mechanistically, Ca2+-induced conformational opening leads to phase separation-mediated condensation of IQSEC2 at synapses, a process that requires the N-terminal multimerization domain and intrinsically disordered regions of IQSEC2. We identified a single-point mutation, F367A, in IQSEC2, which exhibits constitutive activity by structurally mimicking the Ca2+-activated state of the WT protein. Mice carrying the Iqsec2_F367A mutation have elevated basal synaptic transmission and impaired activity-dependent plasticity assayed in hippocampal neurons and spatial learning deficits. Thus, IQSEC2 can bidirectionally modulate synaptic strengths via Ca2+-dependent phase separation, and dysregulation of phase separation may be a contributing factor in IQSEC2-related neurodevelopmental disorders.
The abnormal expansion of GGGGCC (G4C2) repeats in the noncoding region of the C9orf72 gene is a major genetic cause of two devastating neurodegenerative disorders, amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). These G4C2 repeats are known to form G-quadruplex (G4) structures, which are hypothesized to contribute to disease pathogenesis. Here, we demonstrated that four DNA G4C2 repeats can fold into two structurally distinct G4 conformations: a parallel and an antiparallel topology. The high-resolution crystal structure of the parallel G4 reveals an eight-layered dimeric assembly, formed by two identical monomeric units. Each unit contains four stacked G-tetrads connected by three propeller CC loops and is stabilized through 5'-to-5' π-π interactions and coordination with a central K+ ion. Notably, the 3'-ending cytosines form a C·C+·C·C+ quadruple base pair stacking onto the adjacent G-tetrad layer. In contrast, the antiparallel G4 adopts a four-layered monomeric structure with three edgewise loops, where the C6 and C18 bases engage in stacking interaction with neighboring G-tetrad via a K+ ion. These structurally distinct G-quadruplexes provide mechanistic insights into C9orf72-associated neurodegeneration and offer potential targets for the development of structure-based therapeutic strategies for ALS and FTD.
Biological condensates are assembled through phase separation and play critical roles in diverse cellular processes. Condensates in cells form percolated molecular networks via multi-valent interactions among biomolecules. How the network properties of a condensate are connected to its biological function is poorly understood. Using the neuronal postsynaptic density (PSD) condensate as a paradigm, we demonstrate thatbiological condensates can be bidirectionally modulated by strengthening or weakening different interaction nodes within the network. The clustering, mobility, and synaptic functions of AMPA receptors are exquisitely sensitive to alterations in the strength and complexity of the PSD condensate molecular network without changing the binding of the receptor to its direct downstream scaffold. Thus, biological condensates are complex systems with emergent network properties that are harnessed for cellular functions and in this case for synaptic plasticity.
Corepressors CtBP1 and CtBP2 (CtBP1/2) are evolutionarily conserved transcriptional regulators that repress gene expression by recruiting chromatin modifiers, yet the structural basis of this process remains elusive. Here, we identify a direct interaction between CtBP1/2 and the histone H3 lysine 9 (H3K9) methyltransferase G9a. Crystallographic and biochemical analyses reveal that a CtBP1/2 tetramer simultaneously engages two G9a molecules through a motif within the pre-SET domain of G9a, which is absent in its paralog GLP. This interaction enhances G9a catalytic activity in a manner strictly dependent on the oligomeric state of CtBP1/2. Disruption of CtBP2 tetramerization diminishes its association with G9a and abolishes enzymatic activation, underscoring the functional importance of CtBP1/2 oligomerization. In colorectal cancer (CRC) cells, CtBP2 and G9a co-occupy the PTEN promoter, where disruption of their interface reduces H3K9me2 deposition, derepresses PTEN expression, attenuates PI3K-AKT signaling, and impairs CRC cell proliferation. Together, these findings establish a structural framework for CtBP-mediated regulation of G9a activity and highlight the CtBP1/2-G9a complex as a potential therapeutic target in colorectal cancer.
Ankyrin Repeat Domain-containing Protein 11 ( ANKRD11 ) is a causative gene for KBG syndrome, a significant risk factor for Cornelia de Lange syndrome (CdLS), and a highly confident autism spectrum disorder gene. Mutations of ANKRD11 lead to developmental abnormalities in multiple organs/tissues including the brain, craniofacial and skeletal bones, and tooth structures with unknown mechanism(s). Here, we find that ANKRD11, via a short peptide fragment in its N-terminal region, binds to the cohesin complex with a high affinity, implicating why ANKRD11 mutation can cause CdLS. The crystal structure of the ANKRD11 peptide in complex with cohesin, together with biochemical experiments, revealed that ANKRD11 competes with CCCTC-binding factor in binding to the cohesin complex. Importantly, a single point mutation in ANKRD11 (Tyr347 to Ala) specifically disrupted the interaction between ANKRD11 and cohesin and perturbed gene expressions in a mouse embryonic stem cell model. Mice carrying the ANKRD11 Y347A mutation display neural and craniofacial anomalies, which mirror clinical phenotypes observed in KBG syndrome patients. Thus, our study reveals how ANKRD11 functions together with cohesin to regulate gene expression and also provides insights into the molecular mechanisms underpinning developmental disorders caused by ANKRD11 mutations.
PXDesign achieves nanomolar binder hit rates of 20–73% across five of six diverse protein targets, surpassing prior methods such as AlphaProteo. This experimental success rate is enabled by advances in both binder generation and filtering. We develop both a diffusion-based generative model (PXDesign-d) and a hallucination-based approach (PXDesign-h), each showing strong in silico performance that outperforms existing models. Beyond generation, we systematically analyze confidence-based filtering and ranking strategies from multiple structure predictors, comparing their accuracy, efficiency, and complementarity on datasets spanning de novo binders and mutagenesis. Finally, we validate the full design process experimentally, achieving high hit rates and multiple nanomolar binders. To support future work and community use, we release a unified benchmarking framework at , provide public access to PXDesign via a webserver at , and share all designed binder sequences at . ![Figure][1] ### Competing Interest Statement The authors have declared no competing interest. [1]: pending:yes
Polycomb group (PcG) proteins function as two major multicomponent protein complexes: Polycomb repressive complex 1 (PRC1) and 2 (PRC2) to repress key developmental genes and maintain epigenetic memory of cell identity during development. Phase-separation has long been implicated in PRC1 mediated gene silencing, but it is still unclear whether PRC2 also utilize a similar mechanism to regulate gene expression. Here we report that Polycomb-like (PCL) proteins, PRC2 accessory factors, can phase-separate in vitro and generate dynamic puncta in vivo. Biochemical and cellular analyses reveal that PCL proteins (hereafter referred to as PCLs) have intramolecular interaction between N- and C-terminal domains, which make PCLs into more compact conformations. The intramolecular interaction not only controls the size of the PCLs phase separation droplets, but also affects the chromatin association of PRC2. Finally, we show that CpG islands, key DNA regulatory elements in mammalian promoters, disrupt the N-C intramolecular interaction of PCLs to expose their middle intrinsically disordered regions (IDRs), which in turn trigger PCLs driven PRC2 condensates formation. Together, this study provides a new perspective on the regulation of PRC2 by PCLs, implicating PCLs read CpG islands to fine-tune their oligomerization to overcome the threshold for PRC2 recruitment to corresponding genomic loci via multivalent interaction with CpG islands chromatin. ### Competing Interest Statement The authors have declared no competing interest.
Phase separation is emerging as a prime mechanism in organizing dynamic subsynaptic compartments. However, studying phase separation in synapses of living neurons is challenging due to the small size of synapses. In this study, we leverage native postsynaptic densities (PSDs) purified from the mouse brain to investigate their organization. Unlike reconstituted PSDs, which form liquid-like droplets, native PSDs exhibit a gel-like morphology with defined molecular composition. Despite their morphological rigidity, native PSDs retain full molecular plasticity, manifested by selectively recruiting or excluding synaptic proteins and undergoing Ca2+-dependent structural reorganization. Notably, CaMKII in purified PSDs can be rapidly activated by Ca2+, leading to sustained phosphorylation of GluA1 and other PSD proteins. Actin polymerization further enlarges PSD clusters, mirroring structural changes during synaptic potentiation. Thus, native PSDs are functional condensates formed via phase separation. The purified PSDs also serve as an easily accessible platform for studying dynamic regulation of synapses in test tubes.
In multicellular organisms, very little is known about how Ca2+ transients on the ER outer surface elicited by autophagy stimuli are sustained and decoded to trigger autophagosome formation. Here, we show that Ca2+/calmodulin-dependent protein kinase II β (CaMKIIβ) integrates ER Ca2+ transients to trigger liquid-liquid phase separation (LLPS) of the autophagosome-initiating FIP200 complex. In response to ER Ca2+ transients, CaMKIIβ is recruited from actin filaments and forms condensates, which serve as sites for the emergence of or interaction with FIP200 puncta. CaMKIIβ phosphorylates FIP200 at Thr269, Thr1127, and Ser1484 to modulate LLPS and properties of the FIP200 complex, thereby controlling its function in autophagosome formation. CaMKIIβ also controls the amplitude, duration, and propagation of ER Ca2+ transients during autophagy induction. CaMKIIβ mutations identified in the neurodevelopmental disorder MRD54 affect the function of CaMKIIβ in autophagy. Our study reveals that CaMKIIβ is essential for sustaining and decoding ER Ca2+ transients to specify autophagosome formation in mammalian cells.
The abnormal GGGGCC hexanucleotide repeat expansions (HREs) in C9orf72 cause the fatal neurodegenerative diseases including amyotrophic lateral sclerosis and frontotemporal dementia. The transcribed RNA HREs, short for r(G4C2)n, can form toxic RNA foci which sequestrate RNA binding proteins and impair RNA processing, ultimately leading to neurodegeneration. Here, we determined the crystal structure of r(G4C2)2, which folds into a parallel tetrameric G-quadruplex composed of two four-layer dimeric G-quadruplex via 5'-to-5' stacking in coordination with a K+ ion. Notably, the two C bases locate at 3'- end stack on the outer G-tetrad with the assistance of two additional K+ ions. The high-resolution structure reported here lays a foundation in understanding the mechanism of neurological toxicity of RNA HREs. Furthermore, the atomic details provide a structural basis for the development of potential therapeutic agents against the fatal neurodegenerative diseases ALS/FTD.
Guanine (G)-rich nucleic acid sequences can form diverse G-quadruplex structures located in functionally significant genome regions, exerting regulatory control over essential biological processes, including DNA replication in vivo. During the initiation of DNA replication, Cdc6 is recruited by the origin recognition complex (ORC) to target specific chromosomal DNA sequences. This study reveals that human Cdc6 interacts with G-quadruplex structure through a distinct region within the N-terminal intrinsically disordered region (IDR), encompassing residues 7-20. The binding region assumes a hook -type conformation, as elucidated by the NMR solution structure in complex with htel21T18. Significantly, mutagenesis and in vivo investigations confirm the highly specific nature of Cdc6's recognition of G-quadruplex. This research enhances our understanding of the fundamental mechanism governing the interaction between G-quadruplex and the N-terminal IDR region of Cdc6, shedding light on the intricate regulation of DNA replication processes.
Amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD) are progressive neurological disorders that share neurodegenerative pathways and features. The most prevalent genetic causes of ALS/FTD is the GGGGCC hexanucleotide repeat expansions in the first intron region of the chromosome 9 open reading frame 72 (C9orf72) gene. In this review, we comprehensively summarize the accumulating evidences elucidating the pathogenic mechanism associated with hexanucleotide repeat expansions in ALS/FTD. These mechanisms encompass the structural polymorphism of DNA and transcribed RNA, the formation of RNA foci via phase separation, and the cytoplasmic accumulation and toxicities of dipeptide-repeat proteins. Additionally, the formation of G-quadruplex structures significantly impairs the expression and normal function of the C9orf72 protein. We also discuss the sequestration of specific RNA binding proteins by GGGGCC RNA, which further contributes to the toxicity of C9orf72 hexanucleotide repeat expansions. The deeper understanding of the pathogenic mechanism of hexanucleotide repeat expansions in ALS/FTD provides multiple potential drug targets for these devastating diseases.
In addition to long-distance molecular motor-mediated transport, cellular vesicles also need to be moved at short distances with defined directions to meet functional needs in subcellular compartments but with unknown mechanisms. Such short-distance vesicle transport does not involve molecular motors. Here, we demonstrate, using synaptic vesicle (SV) transport as a paradigm, that phase separation of synaptic proteins with vesicles can facilitate regulated, directional vesicle transport between different presynaptic bouton sub-compartments. Specifically, a large coiled-coil scaffold protein Piccolo, in response to Ca2+ and via its C2A domain-mediated Ca2+ sensing, can extract SVs from the synapsin-clustered reserve pool condensate and deposit the extracted SVs onto the surface of the active zone protein condensate. We further show that the Trk-fused gene, TFG, also participates in COPII vesicle trafficking from ER to the ER-Golgi intermediate compartment via phase separation. Thus, phase separation may play a general role in short-distance, directional vesicle transport in cells.
AIDA-1, encoded by ANKS1B, is an abundant postsynaptic scaffold protein essential for brain development. Mutations of ANKS1B are closely associated with various psychiatric disorders. However, very little is known regarding the molecular mechanisms underlying AIDA-1's involvements under physiological and pathophysiological conditions. Here, we discovered an interaction between AIDA-1 and the SynGAP family Ras-GTPase activating protein (GAP) via affinity purification using AIDA-1d as the bait. Biochemical studies showed that the PTB domain of AIDA-1 binds to an extended NPx[F/Y]-motif of the SynGAP family proteins with high affinities. The high-resolution crystal structure of AIDA-1 PTB domain in complex with the SynGAP NPxF-motif revealed the molecular mechanism governing the specific interaction between AIDA-1 and SynGAP. Our study not only explains why patients with ANKS1B or SYNGAP1 mutations share overlapping clinical phenotypes, but also allows identification of new AIDA-1 binding targets such as Ras and Rab interactors.
Ca 2+ /calmodulin (CaM)-dependent kinase II (CaMKII) plays a critical role in long-term potentiation (LTP), a well-established model for learning and memory through the enhancement of synaptic transmission. Biochemical studies indicate that CaMKII catalyzes a phosphotransferase (kinase) reaction of both itself (autophosphorylation) and of multiple downstream target proteins. However, whether either type of phosphorylation plays any role in the synaptic enhancing action of CaMKII remains hotly contested. We have designed a series of experiments to define the minimal requirements for the synaptic enhancement by CaMKII. We find that autophosphorylation of T286 and further binding of CaMKII to the GluN2B subunit are required both for initiating LTP and for its maintenance (synaptic memory). Once bound to the NMDA receptor, the synaptic action of CaMKII occurs in the absence of target protein phosphorylation. Thus, autophosphorylation and binding to the GluN2B subunit are the only two requirements for CaMKII in synaptic memory.
Tau protein misfolding and aggregation are pathological hallmarks of Alzheimer’s disease and over twenty neurodegenerative disorders. However, the molecular mechanisms of tau aggregation in vivo remain incompletely understood. There are two types of tau aggregates in the brain: soluble aggregates (oligomers and protofibrils) and insoluble filaments (fibrils). Compared to filamentous aggregates, soluble aggregates are more toxic and exhibit prion-like transmission, providing seeds for templated misfolding. Curiously, in its native state, tau is a highly soluble, heat-stable protein that does not form fibrils by itself, not even when hyperphosphorylated. In vitro studies have found that negatively charged molecules such as heparin, RNA, or arachidonic acid are generally required to induce tau aggregation. Two recent breakthroughs have provided new insights into tau aggregation mechanisms. First, as an intrinsically disordered protein, tau is found to undergo liquid-liquid phase separation (LLPS) both in vitro and inside cells. Second, cryo-electron microscopy has revealed diverse fibrillar tau conformations associated with different neurodegenerative disorders. Nonetheless, only the fibrillar core is structurally resolved, and the remainder of the protein appears as a “fuzzy coat”. From this review, it appears that further studies are required (1) to clarify the role of LLPS in tau aggregation; (2) to unveil the structural features of soluble tau aggregates; (3) to understand the involvement of fuzzy coat regions in oligomer and fibril formation.
Tau protein has important physiological functions at both presynaptic and postsynaptic terminals. Pathological tau species are also associated with synaptic dysfunctions in several neurodegenerative disorders, especially Alzheimer's disease. To understand tau distribution inside synaptic compartments, super-resolution imaging is required. Here, we describe a facile protocol to immobilize and image brain synaptosomes without aggregation artefacts, by substituting the standard fixative paraformaldehyde with ethylene glycol bis(succinimidyl succinate) (EGS). Super-resolution imaging of tau proteins is achieved through three-color direct stochastic optical reconstruction microscopy (dSTORM). Tau protein is found to colocalize with synaptic vesicles as well as postsynaptic densities.
CaMKII plays a critical role in long-term potentiation (LTP), a well-established model for learning and memory through the enhancement of synaptic transmission. Biochemical studies indicate that CaMKII catalyzes a phosphotransferase (kinase) reaction of both itself (autophosphorylation) and of multiple downstream target proteins. However, whether either type of phosphorylation plays any role in the synaptic enhancing action of CaMKII remains hotly contested. We have designed a series of experiments to define the minimal requirements for the synaptic enhancement by CaMKII. We find that autophosphorylation of T286 and further binding of CaMKII to the GluN2B subunit are required both for initiating LTP and for its maintenance (synaptic memory). Once bound to the NMDA receptor, the synaptic action of CaMKII occurs in the absence of kinase activity. Thus, autophosphorylation, together with binding to the GluN2B subunit, are the only two requirements for CaMKII in synaptic memory.