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Distributed Clonal Deletion Prevents Autoimmune Disease Progression.

Self-reactive B cells are generated during normal development and can acquire increased pathogenicity through activation-induced cytidine deaminase (AID)-mediated diversification following activation. Clonal deletion is thought to eliminate these cells, yet how deletion is distributed across developmental and activation stages to prevent autoimmune disease remains unclear. Here, we show that clonal deletion is enforced through temporally distinct mitochondrial apoptosis (MOMP) checkpoints that differentially regulate autoreactive B cell fate and disease progression. Using conditional Bcl-2 expression to inhibit MOMP either before or after B cell activation, we find that early inhibition permits the survival and maturation of autoreactive B cells after peripheral egress, expanding the pool of cells available for activation. These cells subsequently undergo AID-dependent diversification, producing class-switched IgG autoantibodies with expanded antigen breadth that target a wider range of self-antigens and drive lethal, female-biased autoimmune disease characterized by complement activation and kidney pathology. In contrast, inhibition of MOMP only after activation allows the accumulation of germinal center, switched memory, and plasma cells and promotes autoantibody production, but results in more restricted IgG autoreactivity, limited complement activation and limited tissue damage, and normal survival. Notably, early MOMP inhibition does not expand immature bone marrow B cells, indicating that a major clonal deletion checkpoint operates in the periphery rather than during initial B cell generation. Together, these findings support a Distributed Clonal Deletion Model in which early checkpoints restrict the entry of autoreactive B cells into diversification pathways, while later checkpoints limit the persistence of diversified autoreactive clones, thereby constraining autoimmune disease progression.

Journal Article

Distributed clonal deletion prevents autoimmune disease progression.

Self-reactive B cells arise during development and can increase pathogenicity through activation-induced cytidine deaminase (AID)-mediated diversification. Clonal deletion is thought to eliminate these cells, yet how deletion is distributed across developmental and activation stages to prevent autoimmune disease remains unclear. Here, we show that self-tolerance is enforced through temporally distinct mitochondrial outer membrane permeabilization (MOMP) checkpoints. Using conditional Bcl-2 expression to inhibit MOMP either from B cell development or activation, we find that early inhibition permits survival of autoreactive B cells after peripheral egress, expanding the pool available for activation and AID-dependent diversification. This results in broadened class-switched IgG autoreactivity, complement activation, kidney pathology, and drives lethal autoimmune disease. In contrast, post-activation MOMP inhibition promotes autoreactive cell accumulation and autoantibody production but causes limited tissue damage and normal survival. Together, these findings support a Distributed Clonal Deletion Model in which temporally distinct checkpoints cooperate to constrain autoimmune disease progression.

AID

Immunological tolerance to the thymus-independent antigen dextran can be abrogated by thymus-dependent dextran conjugates: evidence against clonal deletion as the mechanism of tolerance induction.

Tolerance to the alpha1--6 epitope of native dextran B512 was found to be very stable and could not be broken by the injection of dextran conjugated to several substances, such as protein A, keyhole limpet haemocyanin, edistin, concanvalin A or Staphylococcus bacteria, strain Cowan. However, when tolerant mice were injected with dextranase, all the above conjugates induced a strong anti-alpha1--6 immune response. In contrast, native dextran itself never induced a response in tolerant, dextranase-treated mice. It was concluded that tolerance only affects the specific B-cell subpopulation that can respond to the polyclonal B-cell-activating (PBA) property of dextran, whereas other specific B cells having PBA receptors for, e.g., signals delivered by collaborating T cells remain in a resting state. These B cells can respond in a specific immune response against the tolerogen after removal of the antigen, which blocks the Ig receptors and therefore prevents them from passively focusing the antigen. Thus, immunological tolerance is not caused by clonal elimination of the antigen-specific clone, but only affects a small subfraction of cells with Ig receptors against the tolerogen.

Animals

Timing of cyclosporin-A therapy for abrogation of HVG and GVH responses in rats.

Treatment with cyclosporin A was most effective in abrogating popliteal-lymph-node enlargement induced by host-versus-graft and graft-versus-host reactivity in rats when started before injection of donor-strain lymphocytes. Popliteal lymph-node enlargement was never completely abolished, and splenic lymphocytes from recipients treated with cyclosporin A showed no significant reduction in their response to donor-strain lymphocytes in mixed lymphocyte cultures, suggesting that clonal deletion had not taken place. Mixed lymphocyte cultures also indicated that cyclosporin treatment had not reduced the antigenicity of recipient lymphocytes towards donor strain.

Animals

Differences in the mechanism of tolerance to dinitrophenylated bovine gamma globulin when induced in normal adult mice or in reconstituted irradiated mice: dependence of the mechanism of tolerance on the structural organization of the lymphoid system.

Tolerance can be induced in adult mice by a single intravenous injection of 0.5 mg dinitrophenylated bovine gamma globulin. The cellular mechanism of the unresponsive state is different depending upon whether the tolerance is induced in normal intact adult mice or in reconstituted, irradiated mice. The tolerant state induced in intact mice is characterized by a high avidity of the residual antibody-forming cells in partially tolerant animals and a prompt reversibility on cell transfer. The overall properties of this unresponsive state are consistent with the hypothesis that it is mediated by the production of small amounts of high affinity antibody in response to the tolerance-inducing injection of antigen. In contrast, the unresponsiveness induced in reconstituted, irradiated mice by the same procedure was characterized by a low avidity of the residual antibody-forming cells in partially tolerant animals and stability on transfer of spleen cells from unresponsive into irradiated recipients. No suppressor cell activity was detected and mixed cell transfer studies were consitent with the view that this unresponsive state represented a B-lymphocyte clonal deletion. The presence or absence of T lymphocytes in the population of cells used for reconstituting the irradiated recipients did not effect the ease of tolernace induction or the cellular mechanism of the tolerant state which was produced. If irradiated mice reconstituted with B and T lymphocytes were rested for 2 wk before tolerance induction then a reversible "high affinity"-type tolerance is obtained such as is typical of normal intact animals. Restorationof a "normal" response to the tolerance-inducing injection of antigen is dependent upon the presence of thymus cells in the population of cells used for reconstitution. It is suggested that the structural integrity of the lymphoid tissue is critical in determining whether B cell will be rendered tolerant after exposure to antigen in vivo.

Age Factors

Hemopoietic reconstitution obtained in F1 hybrids by grafting of parental marrow cells.

T-cell tolerance to CML and MLR determinants in tetraparental bone marrow chimeras, prepared by injecting lethally x-irradiated F1 hybrids with bone marrow cells from both parental strains, is most likely due to clonal deletion. Tolerance to CML, but not to the host's MLR, determinants is observed when lethally x-irradiated F1 hybrids are repopulated with bone marrow from one parental strain only. The results demonstrate that removal of T cells from donor cells, as well as exclusion of a HVG reaction, make it possible to transplant bone marrow between allogeneic individuals.

Animals

Mechanism of tolerance to DNCB-contact sensitivity induced by immunosuppressive agents.

Specific unresponsiveness to DNCB contact sensitivity has been induced in guinea pigs by a combined application of two immunosuppressive agents, cyclophosphamide and antithymocyte serum, to guinea pigs during the period of sensitization with DNCB. This tolerance was specific since the reactivity to an unrelated hapten (oxazolon) was not impaired by the previous immunosuppressive treatment. The unresponsiveness induced by immunosuppressive treatment has not been reversed by an additional treatment with the high dose of cyclophosphamide known to reverse hapten-induced tolerance, and has not been transferred by parabiosis from tolerant to normal partners. From these results it is concluded that specific unresponsiveness induced by immunosuppressive agents is not mediated by suppressor cells but is rather based on clonal deletion. The relative in unstability of this tolerance may be due to formation of new antigen-reactive cells from undeleted precursors.

Animals

Cyclosporin A: in vivo and in vitro suppression of rat T-lymphocyte function.

The immunosuppressive effect of cyclosporin A (CS-A) was investigated in RIC-Sprague-Dawley rats. In vivo, CS-A totally abolished the formation of antibodies to the hapten dinitrophenyl (DNP) in rats immunized with DNP-keyhole limpet haemocyanin. In vitro, the effect of CS-A was investigated in spleen cell cultures stimulated by concanavalin A, phytohaemagglutinin or lipopolysaccharide. The suppression due to CS-A was more pronounced in cultures set up with cells from rats fed the drug than in spleen cell cultures from control animals supplemented with serum containing CS-A. Purified by filtration through Degalan-rat Ig-anti IgG columns, T lymphocytes from CS-A treated rats were no longer suppressed by CS-A serum in contrast to purified T cells obtained from control rats. Thus, CS-A seems to interfere with the mitogenic triggering of a subpopulation of T lymphocytes resulting in a functional clonal deletion.

Animals

Suppression of cytotoxic response to histoincompatible cells. II. Analysis of the role of two independent T suppressor pools in maintenance of neonatally induced allograft tolerance in mice.

The kinetics of appearance of the precursors of SuppA cells (capable of inhibiting CTLp leads to CTL) or SuppB cells (capable of inhibiting (stem cells leads to CTLp) in neonatal mice, as well as the appearance of SuppA/SuppB cells in mice given neonatal innoculations of semiallogeneic spleen cells has been investigated. The data obtained are consistent with the idea that SuppA cells have a natural role to play in the induction of neonatal tolerance, whereas SuppB cells may be more important for the maintenance of the tolerant state. Unlike the level of SuppB cells, the level of SuppA cells in tolerant mice seems to be modulated by the presence of the tolerizing determinants. Data are provided to show that SuppB cells, once induced in tolerant mice, can adoptively transfer specific allograft unresponsiveness to newborn syngeneic mice in the absence of added tolerizing antigen, whereas SuppA cells are not able to do so. These data fit the notion that SuppB cells may be responsible for the phenotype of clonal deletion.

Animals

Autoimmune disease and the theory of clonal abortion. Is it still relevant?

Explanations for self-tolerance and its failure in autoimmune disease remain conjectural. Earlier deletional theories and the later clonal abortion theory as a basis for central B-cell (and possibly T-cell) tolerance seemed to conflict with various experimental and clinical observations, including those relating to the ability to induce autoimmune reactivity in normal adult animals. Accordingly, immunoregulatory controls have dominated discussions. However, there is recent compelling experimental evidence in favour of clonal abortion of B lymphocytes in the absence of T-cell help. It is proposed that two sets of regulatory systems operate at different stages in life to establish and maintain self-recognition: a central tolerance operates through clonal abortion during embryonic and early postnatal life and during childhood and beyond, ancillary regulatory systems deal with the self-reactive cells which emerge in a milieu in which helper influences interfere with clonal abortion.

Adult

Loss of chromosome Y in hematopoietic cells: mechanisms and implications for human disease.

The chromosome Y, once thought to function primarily in male reproduction, is now recognized to have broader biological roles. Hematopoietic loss of chromosome Y (LOY) is one of the most frequent somatic genomic alterations in male blood, with prevalence increasing markedly with age. Advances in technology have enabled robust detection of LOY in blood at both the population scale and the single-cell level. Hematopoietic LOY arises from mitotic chromosome mis-segregation and is influenced by inherited genetic variation, environmental exposures, and aging. Population-based genome-wide association study (GWAS) analyses have identified robust epidemiological associations between hematopoietic LOY and cardiovascular disease, brain disease, immune disorders, and cancer. Mechanistic studies demonstrate that LOY has functional consequences, including altered gene expression, immune dysregulation, and clonal expansion. Some findings are strongly supported by CRISPR-based LOY mouse and cellular models, which recapitulate key disease-related phenotypes. Collectively, these findings establish hematopoietic LOY as a biologically meaningful form of somatic mosaicism with important implications for disease susceptibility.

Humans

Generation of spCAS9 expressing human mesenchymal stem cell line to study gene function during osteoblast differentiation.

Human bone marrow-derived stromal cells (hMSCs) are a great resource for studying how genes influence cell fate and differentiation into various cell types like osteoblasts, adipocytes, and chondrocytes, among other cell types. However, genetic manipulation of primary hMSCs has been challenging due to their short lifespan and cellular senescence after limited passaging. Their low and unstable transfection efficiency also complicates gene delivery or inactivation, hindering long-term functional studies. The limited lifespan has been effectively solved by immortalizing hMSCs with telomerase reverse transcriptase (hMSCs-TERT). The use of these cells is ideal for functional studies of osteoblast and adipocyte differentiation through genetic manipulation, providing a stable and reliable model. Here, we have engineered a stable CAS9 expressing hMSC-TERT cell line (hMSC-TERTCAS9) via lentiviral transduction. The constitutive expression of spCas9 enables efficient and reproducible gene editing. We demonstrate the potential of these hMSC-TERTCAS9 cells for generating gene disruptions using plasmid delivery of guide RNAs as a fast and efficient strategy for targeted genome editing. The edited cells can be sorted and expanded as single cells to obtain homogenous clonal cell lines with mono- as well as bi-allelic gene deletions, a crucial step for producing reliable experimental results. We further validate this cell line as a powerful tool for studying gene function during hMSC proliferation and differentiation, providing 3 distinct examples of its utility. Through the generation of indels, single-cell sorting, and clonal selection, we have efficiently inactivated the vitamin D receptor and created both larger (256 nucleotides) gene disruptions in Forkhead box protein O1 and precise removals of a small genomic sequence (73 nucleotides) coding for microRNA MIR675. This novel hMSC-TERTCAS9 cell line represents a significant advancement, offering a stable, efficient, and versatile platform for advanced genetic studies, high-throughput screening, and the creation of reliable cellular disease models.

CRISPR-Cas9

Propionyl-CoA carboxylase subunit B regulates anti-tumor T cells in a pancreatic cancer mouse model.

Most human pancreatic ductal adenocarcinoma (PDAC) are not infiltrated with cytotoxic T cells and are highly resistant to immunotherapy. Over 90% of PDAC have oncogenic KRAS mutations, and phosphoinositide 3-kinases (PI3Ks) are direct effectors of KRAS. Our previous study demonstrated that ablation of Pik3ca in KPC (KrasG12D; Trp53R172H; Pdx1-Cre) pancreatic cancer cells induced host T cells to infiltrate and completely eliminate the tumors in a syngeneic orthotopic implantation mouse model. Now, we show that implantation of Pik3ca-/- KPC (named αKO) cancer cells induces clonal enrichment of cytotoxic T cells infiltrating the pancreatic tumors. To identify potential molecules that can regulate the activity of these anti-tumor T cells, we conducted an in vivo genome-wide gene-deletion screen using αKO cells implanted in the mouse pancreas. The result shows that deletion of propionyl-CoA carboxylase subunit B gene (Pccb) in αKO cells (named p-αKO) leads to immune evasion, tumor progression, and death of host mice. Surprisingly, p-αKO tumors are still infiltrated with clonally enriched CD8+ T cells but they are inactive against tumor cells. However, blockade of PD-L1/PD1 interaction reactivated these clonally enriched T cells infiltrating p-αKO tumors, leading to slower tumor progression and improve survival of host mice. These results indicate that Pccb can modulate the activity of cytotoxic T cells infiltrating some pancreatic cancers and this understanding may lead to improvement in immunotherapy for this difficult-to-treat cancer.

Animals

Characterization of a novel putative lantibiotic biosynthesis genomic island in emerging clones of Listeria monocytogenes serotype 4b.

Listeria monocytogenes is a Gram-positive facultative intracellular bacterium that is ubiquitous in nature and the causative agent of listeriosis. The outbreak-derived serotype 4b strain L. monocytogenes strain WS1, sequence type (ST) 558, sublineage (SL) 558, was previously found to have unusual pathogenicity, with ability to cause fetal damage in the first trimester of pregnancy. Search of the WS1 genome for novel and unique genomic features identified a putative lantibiotic island on the chromosome of WS1 and all tested strains of SL558 and two other putative emerging serotype 4b clones, clonal complex 554 (SL554 and SL555) and ST782 (SL782), but absent from all other major clones of L. monocytogenes. The island was deleted from four strains, including two each of ST558 and ST554. The deletions did not impact virulence in a Galleria mellonella model but consistently resulted in reduced hemolytic activity. In addition, we noted strain-dependent impacts on biofilm formation. Additional studies will be necessary to further elucidate the roles of this genomic island in the adaptive physiology and virulence of L. monocytogenes.

Listeria monocytogenes

A subclade-associated genomic deletion encompassing vraDEH confers increased susceptibility to nisin A and bacitracin in Staphylococcus aureus CC121.

Antimicrobial peptides (AMPs) play important roles in suppressing bacterial colonization and infection, and several AMPs are used as antimicrobial agents. Conversely, bacteria possess mechanisms that confer resistance to AMPs. We previously identified clinical Staphylococcus aureus isolates lacking the vraDEH genes, which are involved in nisin and bacitracin resistance. All such isolates belonged to clonal complex (CC) 121 and exhibited increased susceptibility to nisin A and bacitracin. The absence of vraDEH was accompanied by the absence of a 35,005-bp genomic region encompassing the biofilm-associated icaRADBC genes and a histidine biosynthesis operon. In a vraDEH-positive CC121 strain, this region was flanked by two IS1181 elements, whereas in vraDEH-negative strains it was replaced by a single IS1181 element, suggesting deletion through recombination between IS elements. Analysis of publicly available genomes revealed that all strains carrying the 35-kb deletion belonged to a single phylogenetic subclade of CC121. The downstream IS1181 insertion was frequently found in CC121 strains, whereas the upstream insertion was only found in this subclade. Across the S. aureus population, IS1181 copy number and insertion sites correlated with phylogenetic relationships, suggesting that lineage-associated IS1181 insertion may contribute to the genomic deletion in S. aureus CC121.

Nisin

Late acquisition of BCR::ABL1 during clonal evolution of SAMD9-associated MDS with phenotypic shift from AML to B-ALL.

We describe a unique case of SAMD9-associated myelodysplastic syndrome (MDS) with monosomy 7 that evolved over 16 years into BCR::ABL1-positive acute myeloid leukemia (AML) and subsequently manifested as B-cell acute lymphoblastic leukemia (B-ALL). Genomic analysis at AML diagnosis revealed a germline SAMD9 mutation together with somatic RUNX1 and PPM1D mutations, supporting stepwise clonal evolution, with BCR::ABL1 emerging as a late leukemogenic event. The dominant leukemic population at AML onset showed myeloid morphology and immunophenotype, whereas a minor CD19+CD10+ population was already detectable. Following venetoclax and azacitidine therapy, the dominant leukemic phenotype shifted to B-ALL while retaining BCR::ABL1 positivity. Detection of the Philadelphia chromosome in mature neutrophils at both AML onset and ALL relapse supported multilineage involvement of a multipotent BCR::ABL1-positive clone. Ponatinib achieved disease control. This case highlights late acquisition of BCR::ABL1 during SAMD9-associated clonal evolution and therapy-driven phenotypic shift within a shared Ph-positive leukemic stem-cell hierarchy.

Humans