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Torpedo marmorata acetylcholinesterase; a comparison with the Electrophorus electricus enzyme. Molecular forms, subunits, electron microscopy, immunological relationship.

Electron microscopy, sequential degradation by hydrolytic enzymes and the physical-chemical properties of the molecular forms of Torpedo acetylcholinesterase indicate that these molecules are structurally related to each other in the same way as the molecular forms of Electrophorus acetylcholinesterase: all are derived from a complex structure in which three tetrameric groups of subunits are associated with a rod-like 'tail'. In aged preparations the catalytic subunits are split into fragments in a manner similar to those of Electrophorus acetylcholinesterase. Immunological cross-reaction between both enzymes demonstrates the occurrence of common antigenic sites. The enzymes from the two sources, however, are different in their molecular weights and susceptibility to hydrolytic enzymes. Also, Torpedo acetylcholinesterase does not precipitate with either isologous or heterologous antibodies.

Acetylcholinesterase

[Electron microscopic data on the mesosomelike and myelinlike structures of blue-green algae].

The mesosome-like structures of blue-green algae were studied by freeze-etching without preliminary fixation and, in parallel, by a technique of ultrathin sections. These structures were found mainly in Synechococcus elongatus and Synechocystis aquatilis, less often, in Anacystis nidulans and Anabaena variabilis, and were not detected in Plectonema boryanum. The following types of membrane structures were encountered: (1) formation consisting of three- and five-layered membranes and resembling the lamellar mesosomes of bacteria; (2) complex structures consisting of five-layered membranes and separated from the cytoplasm by an electron-dense substance not found in bacteria; (3) myelin-like structures; (4) formations intermediate between the mesosome-like and myelin-like structures. These structures were not found to be strictly confined to the growth phase of a culture. Possible functions of the mesosome-like and myelin-like structures are discussed ct. those of bacteria.

Cell Membrane

In silico prediction method for plant Nucleotide-binding leucine-rich repeat- and pathogen effector interactions.

Plant Nucleotide-binding leucine-rich repeat (NLR) proteins play a crucial role in effector recognition and activation of Effector triggered immunity following pathogen infection. Genome sequencing advancements have led to the identification of a myriad of NLRs in numerous agriculturally important plant species. However, deciphering which NLRs recognize specific pathogen effectors remains challenging. Predicting NLR-effector interactions in silico will provide a more targeted approach for experimental validation, critical for elucidating function, and advancing our understanding of NLR-triggered immunity. In this study, NLR-effector protein complex structures were predicted using AlphaFold2-Multimer for all experimentally validated NLR-effector interactions reported in literature. Binding affinities- and energies were predicted using 97 machine learning models from Area-Affinity. We show that AlphaFold2-Multimer predicted structures have acceptable accuracy and can be used to investigate NLR-effector interactions in silico. Binding affinities for 58 NLR-effector complexes ranged between -8.5 and -10.6 log(K), and binding energies between -11.8 and -14.4 kcal/mol-1, depending on the Area-Affinity model used. For 2427 "forced" NLR-effector complexes, these estimates showed larger variability, enabling identification of novel NLR-effector interactions with 99% accuracy using an Ensemble machine learning model. The narrow range of binding energies- and affinities for "true" interactions suggest a specific change in Gibbs free energy, and thus conformational change, is required for NLR activation. This is the first study to provide a method for predicting NLR-effector interactions, applicable to all pathosystems. Finally, the NLR-Effector Interaction Classification (NEIC) resource can streamline research efforts by identifying NLRs important for plant-pathogen resistance, advancing our understanding of plant immunity.

Plant Proteins

[Circular dichroism of DNA--dye complexes. II. Anisotropy of the long-wave circular dichroism effect and structure of the complex].

Anisotropy of torsional strength of the splitted electronic transition in the case of chromophore-chromophore interaction of dye molecules situated on the helical matrix was considered theoretically and as analytical expression for the value Rperpendicular/Rparallel was obtained. These theoretical results were compared with the experimental data obtained with DNA-proflavine, DNA-pyronine and DNA-acridine orange complexes oriented in multicappilar flow-cell. Studies of the optical effects (optical density and CD changes) due to orientation of these complexes showed that the acridine chromophores are not perpendicular with respect to the DNA axis (alpha D = 19--22 degrees). The DNA base pairs in complexes as assumed also are not perpendicular to the DNA axis, the inclination angle of their transition moments (for the band near 260 nm) being bigger than that of dye chromophores (24 degrees). These results indicate that under experimental conditions used by us no intercalation can be observed.

Acridines

Artificial Intelligence for Natural Products Discovery and Development.

Natural products (NPs) remain a cornerstone of modern drug discovery, offering stereochemical complexity and diverse bioactivities that precisely modulate therapeutic targets, refined through billions of years of evolution. However, their research has long been hindered by inefficient, empirical workflows, high resource consumption, structural complexity, and the "multicomponent, multi-target" nature of their mechanisms. The exponential growth of genomic, metabolomic, and spectral data has overwhelmed conventional analytical methods, exposing critical bottlenecks in handling high-dimensional, heterogeneous datasets that exceed human interpretive capacity. Artificial intelligence (AI) is emerging as a transformative paradigm to address these challenges, integrating multi-omics and chemical data to shift NP research from fragmented empiricism toward mechanism-driven, precision-oriented development. By leveraging deep learning architectures- including graph neural networks, Transformers, and diffusion-based generative models-AI enables systematic decoding of NP biosynthesis, automated structure elucidation, rational target identification, knowledge extraction from vast unstructured scientific literature, and de novo molecular design. This review comprehensively surveys recent advances in AI applications across the full NP discovery and development pipeline, encompassing genome mining, structure-based and ligand-based virtual screening, multimodal structural characterization, lead optimization, and biosynthetic pathway engineering. We further examine the emerging roles of protein-centric, molecule- centric, and multimodal foundation models, as well as large language models, in bridging genotype-to-chemotype gaps and unlocking unstructured scientific knowledge. Finally, we discuss critical challenges including data scarcity, representational limitations for complex stereochemistry, physical plausibility in generative models, and the urgent need for experimental validation, while outlining future directions toward autonomous experimentation, closed-loop optimization, and human-AI collaborative discovery.

Artificial intelligence

Unsupervised multiscale clustering of single-cell transcriptomes to identify hierarchical structures of cell subtypes.

BACKGROUND: Cell clustering is an essential step in uncovering cellular architectures in single-cell RNA sequencing (scRNA-seq) data. However, the existing cell clustering approaches are not well designed to dissect complex structures of cellular landscapes at a finer resolution. RESULTS: Here, we develop a multiscale clustering (MSC) approach to construct a sparse cell-cell correlation network for unsupervised identification of de novo cell types and subtypes across multiple resolutions. Based upon simulated silver- and gold-standard data as well as real scRNA-seq data in diseases, MSC demonstrates significantly improved performance compared to established benchmark methods and reveals a biologically meaningful cell hierarchy to facilitate the discovery of novel disease-associated cell subtypes and mechanisms. CONCLUSIONS: We present MSC as a new single-cell multiscale clustering framework as a powerful tool for advancing discoveries in disease-associated cell populations using single-cell sequencing data.

Single-Cell Analysis

Marine-derived Bioactive Compounds: A Promising Frontier against Multidrug-resistant Microbial Infections.

The global escalation of Multidrug-Resistant (MDR) bacterial infections poses a serious and growing threat to public health, contributing to increased morbidity, mortality, and substantial economic burden worldwide. The widespread and often indiscriminate use of antibiotics in clinical and agricultural settings has accelerated the emergence of resistance, significantly diminishing the efficacy of conventional antimicrobial therapies. This pressing challenge necessitates the exploration of alternative sources for novel antibiotics. Marine ecosystems-renowned for their immense biodiversity and ecological complexity-have gained attention as a rich and largely untapped reservoir of bioactive natural products with potent antimicrobial activity. Marine organisms, such as sponges, tunicates, algae, and bacteria and fungi derived from marine sources, produce structurally diverse and pharmacologically active metabolites, including peptides, polyketides, alkaloids, terpenoids, sterols, lactones, and halogenated compounds. Many of these marine-derived molecules possess unique chemical scaffolds and novel mechanisms of action, offering the potential to circumvent existing resistance pathways. Some compounds have shown promising activity against MDR pathogens, including Staphylococcus aureus, Pseudomonas aeruginosa, and Acinetobacter baumannii. However, challenges such as low natural abundance, difficulty in cultivation, and structural complexity have limited their clinical translation. Recent advancements in marine biotechnology, genomics, metagenomics, and synthetic biology have opened new avenues for the discovery, biosynthesis, and structural optimization of these compounds. These innovative approaches not only facilitate sustainable production but also enhance the pharmacological properties.

Humans

Conformational and structural modulation of the NH2-terminal regions of fibrinogen and fibrin associated with plasmin cleavage.

Conformational and structural modulations of the NH2-terminal region of fibrinogen and fibrin associated with plasmin cleavage have been examined utilizing specific antibody probes. The E region derived from the NH2-terminal aspects of fibrinogen undergoes complex structural and conformational changes throughout the cleavage process as indicated by differences in the quantitative and qualitative expression of antigenic determinants by the E region of each isolated cleavage fragment. When the range of antigenic determinants recognized by the antibody probe is limited to a specific molecular marker on the gamma chain within the E region, fg-E-neo, evidence for a systematic and progressive modulation of this site during plasmin cleavage is observed. Fg-E-neo undergoes progressive exposure as the cleavage of fibrinogen proceeds from X to Y to D:E complex. Separation of the D:E complex into its constituent, D and E fragments, is associated with further exposure of fg-E-neo determinants. The sequential cleavage of fibrin by plasmin also leads to progressive exposure of the fg-E-neo site; however, comparison of corresponding fragments derived from fibrinogen and fibrin reveals significant differences in the character of fg-E-neo expression. Immunochemical differences between fibrin and fibrinogen E fragments are not abolished by further exposure of the fragments to plasmin, are apparently not due to the presence or absence of fibrinopeptides, and are maintained following denaturation and renaturation of the fragments. These results suggest that the differential expression of fg-E-neo by the E fragments may be primarily dependent upon differences in amino acid compositions of the fragments.

Antigen-Antibody Reactions

Chemistry of heparitin sulfate and heparin from normal tissues and from patients with Hunter syndrome.

Some structural features of heparitin sulfate excreted by patients with Hunter syndrome are described. It is shown, with the aid of heparitinases and heparinase from Flavobacterium heparinum, that the Hunter heparitin sulfate is a very complex structure composed of nine different disaccharide units containing regions akin to normal heparitin sulfate and regions akin the heparin. Two-thirds of the iduronic acid residues of Hunter heparitin sulfate are devoid of sulfate, contrasting with heparin in which most of the iduronic acid residues are sulfated. The isolation and characterization of the non-reducing ends of heparin and of the heparitin sulfates is also described. Based on these results the specificity of the heparinase and heparitinases as well as the biosynthesis of iduronic acid-containing heparin-like compounds is discussed.

Chemical Phenomena

Putative rhamnogalacturonan-II glycosyltransferase identified through callus gene editing which bypasses embryo lethality.

Rhamnogalacturonan II (RG-II) is a structurally complex and conserved domain of the pectin present in the primary cell walls of vascular plants. Borate cross-linking of RG-II is required for plants to grow and develop normally. Mutations that alter RG-II structure also affect cross-linking and are lethal or severely impair growth. Thus, few genes involved in RG-II synthesis have been identified. Here, we developed a method to generate viable loss-of-function Arabidopsis (Arabidopsis thaliana) mutants in callus tissue via CRISPR/Cas9-mediated gene editing. We combined this with a candidate gene approach to characterize the male gametophyte defective 2 (MGP2) gene that encodes a putative family GT29 glycosyltransferase. Plants homozygous for this mutation do not survive. We showed that in the callus mutant cell walls, RG-II does not cross-link normally because it lacks 3-deoxy-D-manno-octulosonic acid (Kdo) and thus cannot form the α-L-Rhap-(1→5)-α-D-kdop-(1→sidechain). We suggest that MGP2 encodes an inverting RG-II CMP-β-Kdo transferase (RCKT1). Our discovery provides further insight into the role of sidechains in RG-II dimerization. Our method also provides a viable strategy for further identifying proteins involved in the biosynthesis of RG-II.

Arabidopsis

Renal neoplastic response to leukosis virus strains BAI A (avian myeloblastosis virus) and MC29.

Previous reports described the induction of avian renal neoplasms by leukosis virus strains BAI A [avian myeloblastosis virus (AMV)] and MC29, and illustrated morphological characteristics of the tumors. Continued studies in this work confirm evidence of the origin of the tumors from embryonal cells residual in the posthatched chick. The work further emphasizes differences in histopathology of the neoplasms caused by the two viruses and reveals differences in the histopathogenesis of the respective growths. Embryonal rests may consist of two types of cells, those of epithelial characteristics and a second element of differentiation between nephroblastema (mesenchyme) and epithelium and designated here as nephromesoblastoma. Infection by AMV induces tumors of epithelial characteristics and, in addition, derivatives of nephromesoblastoma consisting of cartilage, bone, areas of keratinization, and sarcoma. Keratinized structures in the nephroblastoma originate from nephromesoblastoma. In contrast, MC29 virus induces only epithelial growths representing principally aberrant and malformed glomerular and tubular structures with occasional cartilage derived from epithelial cells. MC29 tumors are completely lacking in nephromesoblastoma tissue and contain no bone, sarcoma, or keratinized formations. In MC29 tumors, occasional cartilage was derived from epithelium. Tumors caused by AMV exhibit the complex structure of nephroblastoma with all of the features of the growth in humans (Wilms' tumor). The neoplasms induced by both AMV and MC29 exhibit marked aberration, distortion, and malformation in the differentiation of the cells growing out from the embryonal rests representing rare manifestations of cell genetic influence inherent in the primordial growth of nephroblastema. The results thus illustrate fundamental differences in cellular composition and capacity to respond to etiologically different leukosis viruses.

Adenocarcinoma

The genetic system of kinetoplasts in trypanosomatides.

In the present report, the genetic system of Crithidia oncopelti kinetoplast is used as a model for investigation of kinetoplast DNA (kDNA) structure, its transcription, protein synthesizing apparatus of the kinetoplast and the protein synthesis controlled genetically by kDNA. It was shown that kDNA of C. oncopelti can be isolated from cells or from kinetoplast fraction in the form of a network complex structure consisting of a lot of circular molecules. These minicircles have a contour length of about 0.83 micronm and molecular weight of 1.6 X 10(6). The kDNA was demonstrated to be of higher AT content type than nuclear DNA. Besides, kDNA is characterized by a lesser degree of clustering of pyrimidines as compared with the nuclear one. The isolated kinetoplasts of C. oncopelti were shown to exhibit activity of DNA dependent RNA polymerase. The effect of some antibiotics and intercalating substances on RNA synthesis in kinetoplasts and mitochondria appears to be identical. Kinetoplasts of C. oncopelti have their own protein synthesizing system, whose components (ribosomes, rRNA, proteins, factors of incorporation) differ from those of the cytoplasm. Inhibition of translation by some antibiotics and of transcription by acriflavin allowed the suggestion that several proteins of kinetoplast ribosomes may be synthesized within this organoid. It was shown then that kDNA may be involved in the formation of the protein synthesizing apparatus in the kinetoplast.

Animals

Ultrastructure of the collagen fibril. I. Some features of the structure of the collagen fibril.

In the human ovary, thyroid gland and in the rat tail tendon the plasma membrane of fibroblasts may "disappear" or "dissolve", leading to a direct contact of the cytoplasm with extracellular space. Extracellular filaments and collagen fibrils may grow directly out of the cytoplasm and from extracellular vesicles and cellular remnants. The filaments are complex structures composed of 3 to 5 subfilaments. Adjacent collagen fibrils are connected with interfibrillar bridges. In the rat tail tendon 2 different types and opposite orientated fibrils are found. After enzymatic treatment it becomes clear that the collagen fibril has a tridimensional organization and is composed of filaments and amorphous cementing matrix. The matrix is easily affected by various enzymes and washed away, revealing thus the inner spiral structure of the fibril.

Adolescent

Is the cytoskeleton-plasma membrane complex involved in lens protein biosynthesis?

Calf lens fiber cells contain a population of polyribosomes that direct, at least in vitro, the synthesis of a specific plasma membrane protein MP26. This protein may serve as a marker in terminal differentiation, since it is absent in the lens epithelium but appears in lens fiber plasma membranes. The MP26 manufacturing polyribosomes are found to be associated with a structural complex in which also the cytoskeleton and plasma membranes participate. They can be released from the complex by treatment with DNAse I. This result presumably reflects the involvement of actin in the linkage of the MP26 synthesizing polyribosomes to the cytoskeleton-membrane complex.

Animals

[Chromatin fibril. Structure and relationship to the nuclear membrane].

Literature for the recent years on chromatin fibrilla structure is reviewed in the work. Ultrastructural and molecular organization of the elementary chromatin subunits--nucleosomes, discovered in 1974 is discussed and their relation to other discrete chromatin particles is analyzed. The author represents his own data on electron microscopic studies of the cell nucleus after certain experimental effect demonstrating a complex structure of chromatin particles. The scheme of chromatin fibrilla structure is given; morphologic and functional aspects of its connection with the nuclear membrane are considered.

Animals

From glycosylation to inflammation: insights from NMR-Derived GlycA and GlycB.

Post-translational modifications (PTMs) play a crucial role in increasing proteomic diversity. N-linked glycosylation acts as a key regulatory layer that influences protein stability, trafficking, circulation, and immune responses. Unlike conventional inflammatory biomarkers that measure individual proteins, nuclear magnetic resonance (NMR) spectroscopy identifies the combined signals GlycA and GlycB from glycoproteins, offering an overall view of systemic glycoprotein changes. These signals represent the N-glycosylation patterns of several abundant acute-phase proteins (APPs), giving detailed molecular insights. This review offers a detailed assessment of GlycA and GlycB as mechanistically grounded indicators of liver glycoprotein remodeling and systemic inflammation. GlycA mainly indicates the levels and structural complexity of N-acetylglucosamine (GlcNAc) and N-acetylgalactosamine (GalNAc) residues linked to acute-phase glycoproteins and glycan branching. In contrast, GlycB reflects changes in terminal sialylation, which influences glycoprotein half-life, immune recognition via lectins, and inflammatory signaling. Collectively, these biomarkers combine measurements of hepatic APP production with variations in glycan structure, offering mechanistically anchored reporters of hepatic glycoprotein remodeling. We explore the enzymatic pathways responsible for N-glycan branching, fucosylation, and sialylation, as well as the roles of major APP scaffolds in the GlycA and GlycB resonances. We also highlight the emerging clinical significance of these signals across infectious, autoimmune, cardiovascular, metabolic, neurodegenerative, and cancer-related diseases. Rather than serving simply as markers of inflammation, GlycA and GlycB provide mechanistically interpretable readouts of cytokine-driven hepatic glycoprotein remodeling and systemic immune activation, supporting their application in disease risk stratification, longitudinal monitoring, therapeutic response assessment, and precision medicine.

GlycA

Structure of the D-mannan and D-arabino-D-galactan in Crithidia fasciculata: changes in proportion with age of culture.

Cells of the insect flagellate Crithidia fasciculata contained mannan and arabinogalactan components, whose porportion varied with culture age, the former predominating during early stages, and the latter during the later stages of exponential growth and the deceleration phase. The mannan was a beta-D-(1 leads to 2)-linked D-mannopyranan. The arabinogalactan had a complex structure containing, in part, a beta-D-(1 leads to 3)-linked galactopyranose main-chain substituted in the 2 positions by single-unit D-arabinopyranose side-chains and with some unsubstituted units.

Animals