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[Immunological status of alveolar macrophages in patients with lung cancer and benign pulmonary diseases].

This is a report of the study on the immunological status of alveolar macrophages (aM phi) in patients with lung cancer (LC, n = 27) and benign pulmonary diseases (BD, n = 26). Patients were undergone bronchoalveolar lavage by fiberoptic bronchoscopy. aM phi in the lavage fluid isolated by adherence on plastic surface were examined in vitro for their cytostatic and cytolytic activities against tumor target cells, secretion of interleukin 1 (IL-1) and tumor necrosis factor (TNF), intracellular IL-1 activity and mRNA expression of IL-1 beta and TNF-alpha. aM phi, both non-activated and activated, were shown to be highly cytostatic against P815 cells by 3H-TdR post-labelling assay. There was no statistical difference between the LC and BD group. As shown by isotope release assay, regardless of being activated or not, aM phi were not cytolytic against P815 and NS-1 cells in both groups of patients. TNF activity could be demonstrated in the culture supernatants of aM stimulated with LPS. Statistically, the TNF activity was not different in the two groups of patients. Spontaneous release of TNF activity was occasionally detected in unstimulated aM phi. While both intracellular and extracellular IL-1 activity of unstimulated aM phi was demonstrated in the two patient groups, the former activity was 1 to 5 times as high as the latter. When stimulated with LPS, there was some increase in extracellular but not intracellular IL-1 activity. mRNA expression of IL-1 beta and TNF-alpha by dot blot hybridization was demonstrable in aM phi from both patient groups irrespective of activation. These results indicate that the immune status of aM phi in lung cancer patients examined does not differ from that in patients with benign pulmonary diseases.

Adenocarcinoma

Cell-mediated cytotoxicity of desialylated human lymphocytes induced by a mitogenic mammalian liver protein.

The ability of a purified rabbit liver membrane protein that selectively binds desialylated glycoproteins to induce desialylated human peripheral blood lymphocytes to mediate mitogen-induced cellular cytotoxicity has been determined. After short term exposure to purified hepatic binding protein, desialylated, but not intact, lymphocytes exhibited mitogen-induced cellular cytotoxicity against Chang target cells, which do not have exposed hepatic binding protein on their surface membrane. Furthermore, desialylated lymphocytes, in the absence of purified hepatic binding protein, reduced the proportion of isolated rabbit hepatocytes that adhered to plastic to a significantly greater extent than did intact lymphocytes, suggesting that the exposed hepatic binding protein demonstrated on the surface membrane of these target cells is capable of inducing mitogen-induced cellular cytotoxicity. The specific inhibition of this effect by asialo-orosomucoid, but not by intact orosomucoid, indicates that the site involved in the binding of asialo-glycoproteins to hepatic binding protein is probably also responsible for the induction of mitogen-induced cellular cytoxocity. The demonstration that hepatic binding protein, a normal constituent of the surface, membrane of mammalian hepatocytes, can induce mitogen-induced cellular cytotoxicity, suggests that mitogen-induced cellular cytotoxicity may be a mechanism of cellular injury in vivo.

Animals

Interaction between T cells and non-T cells in suppression of cytotoxic lymphocyte responses.

Generation of cytotoxic T lymphocytes (CTL) in mixed leukocyte cultures was suppressed by a factor elaborated by alloantigen-activated T cells. This suppressor factor, CTL-TsF, in contrast to a factor that suppresses proliferative responses in mixed leukocyte reactions (MLR-TsF), was effective only when added during the first 24 hr of a 6-day-culture period. Moreover, removal of CTL-TsF 24 hr after culture initiation failed to restore CTL responses. CTL activity could be rescued from suppressed cultures, however, by addition of 2-mercaptoethanol on days 3 or 4. Similarly, transfer of nonadherent cells at 3 or 4 days from cultures treated with CTL-TsF to cultures of adherent cells initiated in control factor restored CTL responses. Mixing experiments with cells pulsed with CTL-TsF for 4 hr at culture initiation identified a target of CTL-TsF as a Thy-1 negative cell that was adherent to plastic and to Sephadex G-10. Suppression was not due to interference with physiologic accessory cell function, but more likely was accomplished via a negative signal from CTL-TsF-pulsed cells. The results thus suggest that CTL-TsF acts early, but reversibly, in the CTL differentiative process via a second suppressor effector cell, possibly a macrophage.

Animals

Neurotropism and Therapeutic Targeting of Brain Metastases in Small Cell Lung Cancer.

Small cell lung cancer (SCLC) is an aggressive malignancy marked by rapid progression, early dissemination, and a pronounced propensity for brain metastases (BM), which develop in up to 80% of patients. SCLC is defined by profound genomic instability, lineage plasticity, and rapid drug resistance. The establishment of BM is promoted by neuronal mimicry, enhanced intercellular adhesion, and dynamic cross-talk with astrocytes and microglia. Emerging therapies targeting delta-like ligand 3 and B7H3 have demonstrated encouraging intracranial activity. Despite these advances, treatment resistance and limited brain drug penetration remain major unmet needs. This review highlights recent advances in SCLC BM biology and precision therapeutic strategies.

Humans

Discovering hidden candidate plastic-degrading enzymes: Combined multi-omics and machine learning strategy.

Plastic pollution poses a major threat to the stability of natural ecosystems as well as human health. Microbial enzymes have long been considered a potential resource for targeted biodegradation but, except for a few successful cases, the discovery of efficient enzymes has proved challenging. Aiming to accelerate the process, we propose an approach combining metagenomics, metatranscriptomics and semi-supervised learning that selects promising plastic-degrading candidate enzymes from the proteome of relevant microorganisms. Tested on a dataset of over 10,000 microbial proteins, ranking models consistently prioritize known plastic-degrading enzymes, achieving an area under the cumulative distribution function curve above 0.96, with leave-one-family-out cross-validation indicating that performance is largely retained across protein families. As a case study, this work focuses on mixed microbial cultures exposed for extended periods to polyethylene, polyethylene terephthalate, and polyurethane substrates. The prevalent species after selective enrichment were functionally characterized, finding Rhodococcus aetherivorans as the most relevant species in two of the five cultures under investigation. Among the top-ranked proteins, several have high structural similarity with known enzymes despite not being identified by sequence similarity search. Moreover, according to metatranscriptomics results, several of these enzymes were found to be expressed at the same level or above that of annotated enzymes, suggesting that they may have functional relevance. Overall, this work highlights the potential of integrating multi-omics with data-driven methods for enzyme discovery and for accelerating the development of biotechnological solutions to plastic pollution.

Biodegradation, Environmental

The effector cells in human peripheral blood mediating mitogen-induced cellular cytotoxicity and antibody-dependent cellular cytotoxicity.

The identity of the effector cells in human peripheral blood capable of mediating mitogen-induced cellular cytotoxicity (MICC) and antibody-dependent cellular cytotoxicity (ADCC) was investigated utilizing effector cell populations consisting of purified polymorphonuclear leukocytes, macrophages, lymphocytes, and cell surface immunoglobulin (sIg)-negative and sIg-positive lymphocyte subpopulations obtained by Sephadex anti-Fab immunoabsorbent column fractionation techniques. Chicken erythrocytes (CRBC) and Chang liver cells were used as target cells in both cytotoxicity assays. With CRBC targets MICC was mediated by polymorphonuclear leukocytes, macrophages, sIg-positive lymphocytes (B cells), and sIg-negative lymphocytes. On the contrary, with Chang liver cells as targets, MICC was mediated only by lymphocytes, and effector cells occurred exclusively in sIg-negative lymphocyte subpopulations containing thymus-derived lymphocytes (T cells). Further purification of sIg-negative lymphocyte subpopulations on antigen-antibody coated plastic surfaces yielded a nonadherent T lymphocyte population depleted of Fc receptor-bearing lymphocytes that was capable of mediating MICC against both CRBC and Chang cell targets. With use of CRBC targets, ADCC was mediated by polymorphonuclear leukocytes, macrophages, and sIg-negative lymphocyte subpopulations. However, with Chang cell targets, ADCC was mediated only by lymphocytes, and effector cells were present only in sIg-negative lymphocyte subpopulations. SIg-positive lymphocytes (B cells) and T lymphocytes were not effective in mediating ADCC against either CRBC or Chang cell targets. These studies demonstrate that the nature of the target cell employed in MICC and ADCC reactions is of critical imporatnce in defining the effector cell(s) capable of mediating cytotoxicity.

Animals

Determination of some parameters for pion radiobiology studies.

An experimental investigation of the central axis depth-dose and stopping rate distribution of the SIN biomedical pion beam is reported. The pion stopping rate in a thin disc of tissue-equivalent plastic was determined using a counter telescope. The dose rate at the position of this dic 'target' was measured using a specially designed parallel-plate tissue-equivalent ionization chamber. Both dose rate and pion stopping rate are given as a function of depth for beams of two different momenta spread. The energy deposition required per pion stop to fit the measured dose rate curves was calculated and found to be between 37 and 40 MeV. From the stopping rate measurements the depth-dose distribution of pion interaction dose (star-dose) and the dose due to the pion slowing down have been evaluated. The maximum star-dose is found at a depth of about 2 g cm-2 beyound the maximum of the ionization dose.

Elementary Particles

Selective blocking of T cell-mediated in vitro cytotoxicity to a xenogeneic tumour by anti-immunoglobulin sera.

Rejection of a xenograft by BALB/c mice results in a highly potent immune peritoneal population. When these immune cells are analysed by using two in vitro assays in parallel, at least two active cytotoxic mechanisms can be demonstrated. Target cells can be labelled with [125I]iododeoxyuridine (IUdR) before the effector cells are added and the detachment of the DNA from plastic can be used to detect cell-mediated immunity. This is referred to as the direct cytotoxicity test. This assay is largely dependent on T-cell function and evidence is presented here that it can be inhibited by anti-immunoglobulin (anti-Ig) antisera. The second test, which reflects the inhibition of incorporation of IUdR by previously mixed effector and target cells, is called the cytostatic assay. This test, although presumably affected by cytotoxic T cells, also reflects a T-independent mechanism which is not inhibited by anti-Ig sera.

Animals

Organization and plasticity of GABA neurons and receptors in monkey visual cortex.

The GABA neurons of monkey area 17 are a morphologically and chemically heterogeneous population of interneurons that are normally distributed most densely within the geniculocortical recipient zones of the visual cortex. In adult monkeys deprived of visual input from one eye, the levels of immunoreactivity for GABA and GAD within neurons of these geniculocortical zones is reduced. Similar changes are seen in the levels of proteins that make up the GABAA receptor sub-type. The effects of monocular deprivation on other substances suggest that specific types of GABA neurons, such as those in which the tachykinin neuropeptide family and parvalbumin coexist with GABA, are greatly influenced by changes in visual input. That some proteins remain normal within deprived-eye neurons and that other proteins are increased indicates the changes in the GABA cells of the cortex are not the result of a general reduction in protein synthesis. Comparisons of what is known about the morphological and synaptic features of GABA cells in area 17 and the characteristics of cells affected by monocular deprivation suggests that certain classes, such as the clutch cell, may be preferential targets of deprivation. Such a selective loss of certain GABA neurons would have broad implications for the possible physiological plasticity of cortical cells, for if ongoing studies determine that specific receptive field properties are affected by monocular deprivation in adults, the correlation of functional properties and classes of GABA cells would be possible.

Animals

Plasmodium knowlesi can adapt to infect Duffy-negative erythrocytes.

Plasmodium knowlesi, a zoonotic malaria species, has become a significant public health concern in Southeast Asia. In regions such as Malaysia and southern Thailand, P knowlesi incidence has risen, even as other human malaria parasites are nearing elimination. Similar to its close relative Plasmodium vivax, P knowlesi relies on the Duffy antigen receptor for chemokine (DARC) as a key receptor for erythrocyte invasion. Only Duffy-positive individuals are thought to be susceptible to clinical infection. Here, we demonstrate that P knowlesi possesses greater invasion plasticity than previously recognized. This parasite can bypass the need for DARC, as shown by its in vitro adaptation to invade and replicate within Duffy-negative (Fy-) erythrocytes. This adaptation is stable and independent of DARC binding, enabling the adapted parasite line to be maintained in Fy- erythrocytes and to resist inhibition by α-DARC antibodies. Genomic analysis identified a genomic recombination event between the parasite's dbpα and dbpγ genes, resulting in a new chimeric gene dbpαγ. Using CRISPR-Cas9 targeted reversion, we could demonstrate that dbpαγ is essential for invasion of Fy- erythrocytes. These findings shed new light on the invasion plasticity of P knowlesi, with implications for the parasite's potential spread beyond Southeast Asia and for understanding the complex host-cell specificity and atypical invasion pathways seen in P vivax.

Plasmodium knowlesi

A profile of abandoned fetal and neonatal remains admitted to the Diepkloof forensic pathology service medico-legal mortuary during the COVID-19 and post-COVID-19 periods.

The abandonment of neonates is a global concern, with a higher prevalence of cases present in South Africa. This study aimed to review cases admitted to the Diepkloof Forensic Pathology Service during the COVID-19 (2020-2021) and post-COVID-19 (2023) periods. A total of 158 cases were analysed to determine prevalence, demographic characteristics, circumstances and causes of death, with a comparative analysis between the COVID-19 and post-COVID-19 periods. Most cases were classified as natural. However, many were undetermined due to decomposition. Non-viable fetuses (< 26 wk gestation) comprised 47% of the cases. Among the viable births (n&#x2009;=&#x2009;72), 23 (32%) were classified as stillbirths, while 11 (15%) were live births. A minority of cases were deemed unnatural, with deaths attributed to trauma (8 cases) or abandonment (2 cases). No statistically significant difference was found between the COVID-19 and post-COVID-19 periods. Decedents were most often found in open spaces, roads or streets, or dumping sites, most commonly wrapped in plastic materials. These findings highlight the severity of fetal and neonatal abandonment. They underscore a pressing need for targeted preventative measures, community outreach, and enhanced support systems in maternal healthcare to address this growing concern.

Humans

Depletion of NK by cellular immunoadsorption.

The binding of human natural killer (NK) cells to their tumor cell targets was investigated by using monolayers of sensitive target cell lines. Monolayers of K562 and HSB, a myeloid and T cell line, respectively, were prepared on poly-L-lysine-coated plastic tissue culture dishes and briefly fixed with 0.2% formaldehyde. Freshly isolated peripheral blood lymphocytes (PBL) were incubated on the monolayers. Nonadherent PBL were then removed, after gentle agitation, by decanting and gently washing the monolayer. They were tested, along with unseparated controls, for NK activity in a short-term 51Cr release assay. PBL that were nonadherent to a tested monolayer had only 20 to 60% of the control cytotoxic activity. Our results suggest that NK recognition sites on the effector lymphocytes were able to interact with reciprocal determinants on the target cell monolayers, resulting in selective loss of NK effector cells from the PBL population. The specificity of the NK effector-target interaction was investigated by testing the ability of each monolayer to remove activity against both targets. These data imply heterogeneity with regard to recognition structure within the NK effector population as well as among the target cells.

Adult

Neurotransmitter transporters. A novel family of integral plasma membrane proteins.

The re-uptake of neurotransmitters into the nerve terminal terminates synaptic transmission at most central synapses and constitutes a key step in the modulation of synaptic efficacy. Recently, the cloning of several Na(+)-driven neurotransmitter transporters has resulted in the description of a novel family of homologous membrane proteins, each with 12 transmembrane segments. These transporters constitute major targets of widely used drugs, and modulation of transporter gene expression and/or activity may represent an important substrate for plasticity in the nervous system.

Amino Acid Sequence

Cytotoxic activity of lymphocytes. V. Role of soluble toxin in macrophage-inhibited cultures of tumor cells.

Macrophage cell-mediated cytolysis (M-CMC) of tumor cells may be measured by culturing target cells on macrophage monolayers and determining target cell survival by either Rb or H-thymidine incorporation. Using these techniques, one can demonstrate cytotoxicity of nonimmune human and rat macrophages to a variety of tumor cell lines. Toxicity becomes maximal 8 to 16 hr after attaching macrophages to plastic surfaces and disappears after 36 to 48 hr. Addition of Escherichia coli endotoxin at 48 hr restores macrophage toxicity. Culture of macrophages on plastic surfaces also results in the release, nonspecifically, of a soluble cytotoxin whose kinetics of release, disappearance, and reappearance after endotoxin all parallel the M-CMC. The amount of toxin released into cultures containing target cells is markedly reduced, suggesting that it is the mediator of the M-CMC and that it is utilized or absorbed during target destruction. Sephadex G-100 chromatography and treatment with heterologous anti-lymphotoxin can distinguish this toxin from lymphotoxin.

Adsorption

Single-cell multiomics reveals exosome-mediated reprogramming and clonotypic remodeling of T cells in triple-negative breast cancer.

Triple-negative breast cancer (TNBC) is an aggressive and immunogenic subtype lacking targeted therapies. While tumor-derived exosomes are known to modulate immune function, their direct impact on human T cell plasticity and antigen specificity remains poorly defined. Here, we conducted a comprehensive single-cell multiomic analysis of primary human T cells exposed to exosomes derived from 17 genomically diverse TNBC cell lines and 35 patient samples. Integrating single-cell RNA-seq, V(D)J sequencing, non-coding RNA profiling, bulk and single-cell cytokine analyses, we uncovered conserved and subtype-specific immunomodulatory programs induced by TNBC exosomes. Exosome-treated T cells displayed skewing toward regulatory and dysfunctional phenotypes, including Th17-like, Treg, and PD-1&#x207a;/PD-L1&#x207a; Tfh cells. Functional profiling revealed suppression of early activation markers and cytokine responses, alongside selective preservation of cytotoxic features in &#x3b3;&#x3b4; T and NKT subsets. Transcriptomic and miRNA network analyses demonstrated widespread downregulation of immune effector genes (e.g., HBEGF and TNFSF9) mediated by exosome-delivered regulatory miRNAs (has-miR-98-5p). Notably, exosome-stimulated T cells displayed distinct clonotypic expansions, characterized by the emergence of five tumor-specific &#x3b3;&#x3b4; TCR clonotypes and 30 unique &#x3b1;&#x3b2; TCR CDR3 sequences that were absent in mock-treated controls, underscoring the role of exosomes in shaping TCR repertoire dynamics.

Humans

Balancing under constraint: Structural insights into norovirus evolution and antigenic innovation.

Norovirus is the leading cause of acute viral gastroenteritis worldwide. While genomic studies have revealed its diversity and evolutionary patterns, the structural mechanisms driving viral adaptation remain poorly understood. Here, we establish a comprehensive structural database of norovirus VP1 P-domains across nine genogroups (GI-GIX) through large-scale AlphaFold2 predictions. By integrating phylogenetic analysis of VP1 sequences and structures, we demonstrate that sequence and structural evolution show overall concordance under purifying selection, yet significant local discrepancies reveal distinct patterns of convergent evolution shaped by structural constraints and functional divergence. Focusing on the predominant GII.4 genotype, we found that compared to near-full-genome and nucleotide trees, only the VP1 amino acid tree reliably clustered GII.4 variants in chronological order as monophyletic groups. We further identify a hierarchical evolutionary strategy: positive selection may drive structural hypervariability in major antigenic epitopes D and C for immune escape, with epitope D exhibiting pronounced structural flexibility that complicates its structural characterization, whereas coevolutionary analysis uncovers a broad network of compensatory interactions spanning multiple epitopes, with striking enrichment in epitope A. These epitopes exhibited a pattern of "sequence plasticity with structural conservation", maintained by coevolutionary constraints that preserve conformational integrity. Together, these findings suggest that norovirus vaccine strategies targeting the structurally conserved conformations of epitopes A and G could overcome the limitations of traditional strain-specific approaches, offering a pathway toward broad protection against evolving viral diversity.

Norovirus

Cytotoxicity in graft-versus-host reaction. II. Lysis of target cells of parental genotyppe by F1 hybrid macrophages.

Graft-versus-host (GVH) reactions were induced in adult F1 hybrid mice with the i.p. injection of parental strain spleen cells. Peritoneal exudate and spleen cells of the F1 hybrids taken 8 days after the induction of GVH reaction had a nonspecific in vitro cytotoxic effect which was measured by using 51Cr-labeled target cells of parental genotype. The cytotoxic cells in the peritoneal exudates were shown to be macrophages which adhered to plastic surfaces and were sensitive to the toxic action of crystalline silica particles. Moreover, the injection of partially purified syngeneic macrophages into the F1 hybrids undergoing GVH reactions increased the cytotoxic activity of the peritoneal exudate cells obtained from these animals. These results suggest that during GVH reaction host macrophages are activated into a state of nonspecific cytotoxicity.

Animals

AAV-mediated CBLN1 replacement rescues hereditary ataxia caused by bi-allelic CBLN1 variants.

Cbln1 is a secreted synaptic organizer required for parallel fiber-Purkinje cell (PF-PC) synapse integrity, climbing fiber (CF) refinement, and cerebellar motor learning but has not previously been implicated in human disease. We identified bi-allelic CBLN1 missense variants (A63P and Y112C) in two unrelated families with early-onset cerebellar ataxia accompanied by oculomotor abnormalities, cerebellar atrophy, and variable cognitive delay. In heterologous cells, both variants showed reduced steady-state protein abundance, impaired maturation through the early secretory pathway, and little or no detectable secretion, resulting in markedly reduced extracellular CBLN1 availability. Consistently, cerebellar granule cells expressing CBLN1-Y112C failed to induce excitatory synapses onto glutamate receptor &#x3b4;2 (GluD2)-expressing cells in vitro. A knockin mouse harboring Y112C lacked synaptic Cbln1 and recapitulated key features of Cbln1 deficiency, including disrupted PF-PC synapse organization, persistent CF multi-innervation, impaired PF-PC transmission, and long-term depression, and deficits in motor coordination and oculomotor learning. Notably, systemic delivery of an astrocyte-targeted adeno-associated virus expressing wild-type CBLN1 in adult mutant mice restored synaptic CBLN1 localization, cerebellar synaptic function, plasticity, and behavior. These findings establish CBLN1 deficiency as a cause of hereditary ataxia and identify extracellular CBLN1 replacement as a therapeutic strategy for a reversible cerebellar synaptopathy.

CBLN1