Atomic resolution in cryo-electron microscopy was first demonstrated six years ago. This was accomplished using 300 kV electron microscopes equipped with new hardware that provided narrower energy spread, aberration correction and energy filtering. Here, we report the achievement of 1.24 Å atomic resolution on an upgraded 200 kV electron microscope featuring a cold field emission gun, a high-resolution objective lens polepiece and an energy filter. These components transform the instrument into a cost-effective single-particle cryo-EM platform with performance comparable to that of significantly more expensive 300 kV systems. The microscope can also be operated at 100 kV and by using a high-speed hybrid-pixel detector we were able to reach sub-2 Å resolution.
Cryo electron tomography (cryo-ET) enables three-dimensional visualization of biological macromolecules in their near-native environments, bridging the gap between structural and cellular biology. In this study, we evaluated high-resolution subtomogram averaging (STA) using a cryo-TEM (CRYO ARM (TM) 300 II, JEOL) and PACEtomo software system for both single-particle analysis (SPA) type grids and lamellae prepared by cryo-focused ion beam (cryo-FIB) milling (JIB-4700F, JEOL). Using mouse apoferritin and E. coli ribosomes in thin vitreous ice film, resolutions of 2.04 & Aring; and 2.86 & Aring; were achieved, respectively. Using cryo-FIB lamellae of Salmonella cells, in situ ribosome structures were resolved to 8.2 & Aring; resolution.
Endogenous Escherichia coli proteins can co-purify with recombinant targets and dominate cryo-EM datasets, yet often escape detection during standard biochemical quality control. In parallel to the recent report by Caliseki and coworkers [Caliseki et al. (2025), Acta Cryst. D81, 545-557], we independently identified ArnA contamination while purifying a soluble, low-yield KIF17-IFT70 complex, ultimately obtaining a 3.23 Å resolution cryo-EM structure of ArnA rather than the intended target. Our results reinforce that ArnA enrichment reflects general features of His-tag affinity purification and can become particularly problematic in cryo-EM workflows when the intended target is low in yield or conformationally heterogeneous. By comparing biochemical behavior and cryo-EM outcomes, we outline why ArnA may evade SDS-PAGE and size-exclusion chromatography, and be underappreciated in routine mass spectrometry-based quality control, yet becomes structurally dominant in cryo-EM. These findings broaden the scope of the original study and highlight the need for early cryo-EM screening and improved contaminant awareness in structural biology.
LysR-type transcriptional regulators (LTTRs) are a diverse family of proteins that regulate various cellular processes, including motility in bacteria. In Escherichia coli, the LTTR LrhA represses flagellar biosynthesis by inhibiting the flhDC operon. However, the structural basis underlying this regulation has remained unclear. Here, we determined both a high-resolution crystal structure and a cryo-EM reconstruction of LrhA, revealing a predominant and stable tetrameric organization with pronounced structural variability in its effector-binding region. Structural and biochemical analyses demonstrate that mutations in these variable regions perturb the oligomeric equilibrium of LrhA, shifting the balance between tetrameric and dimeric species. This shift correlates with enhanced DNA binding affinity and stronger repression of the flhDC promoter. While ligand binding may similarly modulate LrhA activity, our data primarily support a model in which alterations in oligomeric state mediated by the variable regions regulate LrhA function. Together, these findings provide a structural framework for understanding how LrhA controls bacterial motility and offer broader insights into oligomerization-based regulation within the LTTR family.
Tauopathies are characterized by the accumulation of abnormally phosphorylated tau filaments, with disease-specific folds revealed by cryo-electron microscopy (cryo-EM). Here, we delivered a recombinant human tau carrying the P301L/S320F double mutation into AppNL−G−F/MAPT double knock-in mice using a blood–brain-barrier-permeable AAV (AAV-PHP.eB), enabling rapid induction of tau aggregation in vivo. The mutant tau was systemically administered via retro-orbital injection, providing a minimally invasive approach for widespread neuronal transduction. Phosphorylated tau aggregation, as well as seeding activity, were observed without the need for exogenous seeds. Our cryo-EM analysis resolved a novel filament fold incorporating residues 279–329, in which the P301L and S320F mutations introduced stabilizing interactions that reinforced filament assembly. This conformation was distinct from previously reported folds, including Alzheimer and Pick tau filaments. Moreover, the filaments adopted a more compact architecture than those observed in patient-derived samples or other model mice. This finding demonstrates that P301L/S320F double-mutant tau adopts a structurally unique, highly aggregation-prone fold, and that this system provides a rapid platform for modeling tau filament formation.
Assembly of adaptor protein complex 2 (AP-2), the primary cargo adaptor in clathrin-mediated endocytosis, is regulated by the chaperones alpha- and gamma-adaptin binding protein (AAGAB) and coiled-coil domain-containing protein 32 (CCDC32), whose deletion causes loss of all AP-2 subunits in vivo. Here, we describe the molecular mechanism of CCDC32-mediated AP-2 assembly. CCDC32 interacts with the appendage domain of the AP-2 α subunit with high affinity, using the same binding site as canonical endocytic regulators in addition to a previously unidentified, yet highly conserved pocket on α. CCDC32 contains cargo sorting motifs normally found in transmembrane cargo and binds to AP-2 heterodimers using canonical cargo-binding sites. In addition, two amphipathic helices in CCDC32 bind to the α/σ2 heterodimer. Unexpectedly, in solution, CCDC32 prevents complex assembly and actively disassembles AP-2 tetramers. Inhibition requires the amphipathic helices of CCDC32, which also mediate binding to phosphatidylinositol 4,5-bisphosphate (PIP2)-containing membranes. The presence of PIP2-containing membrane stabilizes the final stages of assembly. We propose that the membrane acts as a molecular switch to release inhibitory interactions, allowing for full complex assembly to proceed.
Kinesin-1 walks along microtubules by alternating ATP hydrolysis and movement of its two motor domains ("head"). The detached head preferentially binds to the forward tubulin-binding site after ATP binds to the microtubule-bound head, but the mechanism preventing premature microtubule binding while the partner head awaits ATP remains unknown. Here, we examined the role of the neck linker, the segment connecting two heads, in this mechanism. Structural analyses of the nucleotide-free head revealed a bulge just ahead of the neck linker's base, creating an asymmetric constraint on its mobility. While the neck linker can stretch freely backward, it must navigate around this bulge to extend forward. We hypothesized that increased neck linker tension suppresses premature binding of the tethered head, which was supported by molecular dynamics simulations and single-molecule fluorescence assays. These findings demonstrate a tension-dependent allosteric mechanism that coordinates the movement of two heads, where neck linker tension modulates the allosteric conformational changes rather than directly affecting the nucleotide state.
Intracellular transport relies on motor proteins like kinesins to deliver essential cargoes along microtubules, yet the mechanisms of cargo recognition remain unclear. Here, we present high-resolution cryo-electron microscopy structures of the heterotrimeric kinesin-2 complex (KIF3A/KIF3B/KAP3) bound to the adenomatous polyposis coli (APC) cargo. Our findings reveal a previously uncharacterized KIF3 tail motif, termed the "Hitchdock domain," which plays a pivotal role in mediating interactions with both the KAP3 adaptor and the APC cargo. In this domain, the KIF3A helical regions facilitate specific cargo binding, while the β-hairpin region and KIF3B provide structural support. Mutagenesis and molecular dynamics simulations confirm the domain's functional importance. Interestingly, the Hitchdock/KAP3 structure suggests a conserved structural basis for cargo recognition across molecular motors, including kinesin-1 and dynein, which utilize similar hook-like architectures, highlighting the potential universality of this mechanism. Furthermore, our findings provide insights into kinesin-2 cargo specificity and offer a molecular framework for understanding related diseases. ### Competing Interest Statement The authors have declared no competing interest.
Cells have evolved a variety of assembly chaperones to aid in the difficult process of forming macromolecular complexes in a crowded cytoplasm. Assembly of adaptor protein complex 2 (AP-2), the primary cargo adaptor in clathrin-mediated endocytosis, is regulated by the chaperones AAGAB and CCDC32, whose deletion causes loss of all AP-2 subunits in vivo. AAGAB and CCDC32 are thought to act sequentially to assemble the AP-2 tetramer from its constituent heterodimers. However, the molecular requirements and structural consequences of CCDC32 interaction with AP-2 are not yet understood. Here, using in vitro reconstitution and integrative structural analysis, we describe the molecular mechanism of CCDC32-mediated AP-2 assembly. First, CCDC32 interacts with the appendage domain of the AP-2 α subunit, using the same binding site as canonical endocytic regulators in addition to a novel, yet highly conserved pocket on α. CCDC32 contains cargo sorting motifs normally found in trans-membrane cargo and binds to AP-2 heterodimers using canonical cargo-binding sites. Additionally, two amphipathic helices in CCDC32 bind to the α/σ2 heterodimer. Surprisingly, in solution, we find that CCDC32 prevents complex assembly and actively disassembles AP-2 tetramers. Inhibition requires the amphipathic helices of CCDC32, which also mediate binding to PIP2-containing membranes. The presence of PIP2-containing membrane stabilizes the final stages of assembly. We propose that the membrane acts as a molecular switch to release inhibitory interactions, allowing for full complex assembly to proceed. Using cryo-EM, we visualize an assembly intermediate that mimics the conformation of AP-2 found in vesicles, with CCDC32 bound at both cargo binding sites and both membrane-binding sites, suggesting that assembly leads to deposition of active complexes on the plasma membrane.
Abstract The spectraplakin family protein GAS2 was originally identified as a growth arrest-specific protein, and recent studies have revealed its involvement in multiple cellular processes. Its dual interaction with actin filaments and microtubules highlights its essential role in cytoskeletal organization, such as cell division, apoptosis, and possibly tumorigenesis. However, the structural basis of cytoskeletal dynamics regulation by GAS2 remains unclear. In this study, we present cryo-electron microscopy structures of the GAS2 type 3 calponin homology domain (CH3) in complex with F-actin at 2.8 Å resolution, thus solving the first type CH3 domain structure bound to F-actin and confirming its actin-binding activity. We also provide the first near-atomic resolution cryo-EM structure of the GAS2-GAR domain bound to microtubules and identify conserved microtubule-binding residues. Our biochemical experiments show that GAS2 promotes microtubule nucleation and polymerization, and that its C-terminal region is essential for dimerization, bundling of both F-actin and microtubules, and microtubule nucleation. As mutations leading to expression of C-terminally truncated GAS2 have been linked to hearing loss, these findings suggest that the disruption of GAS2-dependent cytoskeletal organisation could underlie auditory dysfunction.
PMEL amyloids serve as essential scaffolds for melanin deposition in melanosomes, playing a crucial role in pigmentation. Despite their importance, the high-resolution structure of PMEL amyloids has remained unresolved. Using cryo-electron microscopy, we determine near-atomic resolution structures of wild-type PMEL amyloid core, revealing two distinct polymorphic forms with structural features. We further investigate the pathogenic G175S mutation associated with pigment dispersion syndrome (PDS). Structural analysis reveales that G175S introduces an additional hydrogen bond, stabilizing an alternative fibril conformation. In vitro, the G175S mutant exhibits a fourfold increase in polymerization efficiency compared to the wild type. In cells, G175S expression resultes in a twofold increase in intracellular amyloid content and a ~70% increase in extracellular amyloids, without altering melanosome morphology or number. These results indicate that the G175S mutation enhances amyloidogenesis within melanosomes, elevating amyloid load and potentially contributing to PDS pathophysiology. This study provides molecular insights into PMEL amyloid formation, highlighting its structural diversity and dysregulation in pigmentation disorders.
Motor protein tails, long considered flexible and disordered linkers that mediate transient cargo interactions, are increasingly recognized as dynamic hubs containing context-dependent structural motifs. Advances in cryo-EM single-particle analysis, flexible refinement tools, and in situ cryo-ET now allow visualization of partially ordered elements within these flexible regions. Recent studies of kinesin reveal that local folding events regulate adaptor binding, cargo recognition, and motor activation, challenging the traditional view of the kinesin tail as mostly disordered. This emerging perspective highlights motor tails as regulatory platforms where intrinsic disorder coexists with hidden structure, reshaping our understanding of transport regulation.
Porin, or the voltage-dependent anion channel (VDAC), is a primary β-barrel channel in the mitochondrial outer membrane. It transports small metabolites and ions through its β-barrel pore and plays key roles in apoptosis and inflammatory response. Here we report the cryo-electron microscopy structure of yeast porin (Por1) in its hexameric form at 3.2 Å resolution. This structure allows us to introduce various mutations at the protomer interfaces, uncovering three critical functions of Por1 assembly beyond transport. Por1 binds unassembled Tom22, a subunit of the mitochondrial protein import gate (the TOM complex), to facilitate protein import into the intermembrane space, maintains proper mitochondrial lipid composition in the outer membrane through lipid scramblase activity, and contributes to the retention and regulated loss of mitochondrial DNA, in cooperation with nucleases identified through screening enabled by the obtained Por1 mutant.
Convergent evolution of proteins provides insights into repeatability of genetic adaptation. While local convergence of proteins at residue or domain level has been characterized, global structural convergence by inter-domain/molecular interactions remains largely unknown. Here we present structural convergent evolution on fusion enzymes of aldehyde dehydrogenases (ALDHs) and alcohol dehydrogenases (ADHs). We discover BdhE (bifunctional dehydrogenase E), an enzyme clade that emerged independently from the previously known AdhE family through distinct gene fusion events. AdhE and BdhE show shared enzymatic activities and non-overlapping phylogenetic distribution, suggesting common functions in different species. Cryo-electron microscopy reveals BdhEs form donut-like homotetramers, contrasting AdhE's helical homopolymers. Intriguingly, despite distinct quaternary structures and < 30% amino acid sequence identity, both enzymes forms resemble dimeric structure units by ALDH-ADH interactions via convergently elongated loop structures. These findings suggest convergent gene fusions recurrently led to substrate channeling evolution to enhance two-step reaction efficiency. Our study unveils structural convergence at inter-domain/molecular level, expanding our knowledges on patterns behind molecular evolution exploring protein structural universe.
We report the first bioconjugation of Au25 nanocluster to a monoclonal antibody without protein engineering, in a step toward the development of high-resolution probes for cryogenic electron microscopy (cryo-EM) and tomography (cryo-ET). To achieve this, we improved the tryptophan (Trp)-selective bioconjugation step by using easy-to-analyze hydroxylamine (ABNOH) reagents in a pH-neutral buffer, instead of using N-oxyl radicals (ABNO) under acidic conditions as previously developed. This new protocol allowed for the application of Trp-selective bioconjugation to acid-sensitive proteins such as antibodies. We found that a two-step procedure, utilizing first Trp-selective bioconjugation for homogeneous introduction of azide groups to the protein and then strain-promoted azide-alkyne cycloaddition (SPAAC) to attach bicyclononyne (BCN)-presenting, redox-sensitive Au25 nanocluster, was key to successful immunogold synthesis. This procedure is scalable. The covalent labeling of the antibody with gold nanoclusters was confirmed by various analytical methods, including cryo-EM analysis of the Au25 nanocluster conjugates. In comparison with a non-homogenous variant prepared by lysine-selective bio-conjugation, Trp-selective conjugates exhibited both satisfactory gold cluster modification and minimal loss of antigen-binding ability.
Intracellular transport relies on motor proteins such as kinesins to deliver cargo along microtubules, yet how they recognize cargo remains unclear. Here, we present high-resolution cryo-electron microscopy structures of the heterotrimeric kinesin-2 complex (KIF3A/KIF3B/KAP3) bound to the cargo protein APC. Our findings reveal a previously uncharacterized KIF3 tail hook-like motif, termed the "HAC" domain, which mediates binding to both KAP3 adaptor and APC cargo. Within this domain, the KIF3A helical regions ensure cargo specificity, while a β-hairpin and KIF3B provide structural support. Biochemical and neuronal experiments confirm its functional importance. Notably, the HAC/KAP3 structure resembles hook-like architectures seen in kinesin-1 and dynein, suggesting a shared cargo recognition framework. These findings also shed light on kinesin-2 cargo specificity and offer a structural framework for understanding related neuronal transport mechanisms.
In eukaryotic cells, genomic DNA is compacted by nucleosomes, as basic repeating units, into chromatin. The nucleosome arrangement in chromatin fibers could be an important determinant for chromatin folding, by which genomic DNA is regulated in the nucleus. To study the structures of chromatin units in cells, we have established a method for the structural analysis of native mono- and poly-nucleosomes prepared from HeLa cells. In this method, the chromatin in isolated nuclei was crosslinked to preserve the proximity information between nucleosomes, followed by chromatin fragmentation by micrococcal nuclease treatment. The mono- and poly-nucleosomes were then fractionated by sucrose gradient ultracentrifugation, and their structures were analyzed by cryo-electron microscopy. Cryo-electron microscopy single particle analysis and cryo-electron tomography visualized a native nucleosome structure and secondary nucleosome arrangements in cellular chromatin. This method provides a complementary strategy to fill the gap between in vitro and in situ analyses of chromatin structure.
PMEL amyloids provide a vital scaffold for melanin deposition in melanosomes, playing a central role in pigmentation. Despite their importance, the high-resolution structure of PMEL amyloids has remained elusive. Here, we determined near-atomic resolution structures of wild-type PMEL amyloids using cryo-electron microscopy, revealing two distinct polymorphic forms with unique structural features. We further examined the pathogenic G175S mutation linked to pigment dispersion syndrome (PDS). Structural analysis showed that the G175S mutation introduces an additional hydrogen bond, stabilizing a novel fibril conformation. In vitro assays demonstrated a fourfold increase in polymerization efficiency for the G175S mutant compared to the wild-type. This enhanced polymerization correlated with a ~70% increase in secreted amyloids in G175S-expressing cells without detectable changes in melanosome morphology or number. These findings suggest that the G175S mutation promotes amyloidogenesis within melanosomes, increasing amyloid load and contributing to PDS pathophysiology. This study provides insights into the molecular basis of PMEL amyloid formation in both physiological and pathological contexts, offering new perspectives on their structural diversity and dysregulation in pigmentation disorders. ### Competing Interest Statement The authors have declared no competing interest.