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Assembly and function of the T cell antigen receptor. Requirement of either the lysine or arginine residues in the transmembrane region of the alpha chain.

The T cell receptor (TCR) for antigen consists, on the majority of peripheral lymphocytes, of an immunoglobulin-like, disulfide-linked heterodimeric glycoprotein: the alpha and beta chain. These proteins are noncovalently linked to at least four nonvariant proteins which comprise the CD3 complex: CD3 gamma, delta, epsilon, and zeta. Whereas the TCR alpha and beta proteins have positively charged residues in the transmembrane region, all the CD3 proteins have similarly placed negatively charged amino acid residues. It has been suggested that these basic and acidic amino acid residues may play an important role in TCR.CD3 complex assembly and/or function. In this paper, the structural and functional role of the lysine and arginine residues of the TCR alpha chain was addressed using oligonucleotide mediated site directed mutagenesis. The Arg256 and Lys261 residues of the TCR alpha cDNA of the HPB-ALL cell line were mutated to either Gly256 and/or Ile261. The altered cDNAs were transfected into a TCR alpha negative recipient mutant cell line of REX, clone 20A. Metabolic labeling of the T cell transfectants showed that mutation of either the Arg256 or Lys261 amino acid residues had no effect on the ability of the TCR alpha chain to form either a heterodimer with the TCR beta chain or a complex with the CD3 gamma, delta, and epsilon proteins. Consequently, the Arg256 to Gly256 and Lys261 to Ile261 mutations did not prevent the formation of a mature, functional TCR.CD3 complex on the cell surface as determined by immunofluorescence, cell surface radioiodination, and the ability of the transfectants to mobilize intracellular calcium after stimulation with a mitogenic anti-CD3 epsilon monoclonal antibody. In contrast, a mutant cDNA in which both the Arg256 and Lys261 residues were mutated to Gly256 and Ile261, respectively, failed to reconstitute the cell surface expression of the TCR.CD3 complex and, consequently, the ability to respond to mitogenic stimuli. In the absence of both the Arg256 and Lys261 residues, TCR alpha beta heterodimer formation was not observed. Cotransfection studies in COS cells showed that the failure of assembly of a heterodimer was likely due to an inability of the mutated TCR alpha chain to form a subcomplex with either the CD3 gamma, delta, epsilon, or zeta proteins.(ABSTRACT TRUNCATED AT 400 WORDS)

Amino Acid Sequence

CD3-zeta surface expression is required for CD4-p56lck-mediated upregulation of T cell antigen receptor-CD3 signaling in T cells.

It has been proposed that during T cell receptor antigen recognition, CD4- or CD8-p56lck molecules interact with the T cell antigen receptor-CD3 complex (TCR-CD3) to phosphorylate various undefined substrates, which then initiate signal transduction through the TCR-CD3 complex. The ability of CD4 to modulate the TCR-CD3-induced increase in intracellular Ca2+, [Ca2+]i, and substrate tyrosine phosphorylation was studied in mutants of the human leukemic T cell line HPB-ALL characterized by their low expression of the TCR-CD3 complex on the cell surface. In TCR-CD3low cells, in which CD3-zeta was found to be associated with the TCR-CD3 complex, cross-linking CD3 with CD4 resulted in a profile of calcium mobilization, CD3-zeta, and phospholipase C-gamma 1 tyrosine phosphorylation similar to that observed in HPB-ALL cells, although the magnitude of generalized substrate tyrosine phosphorylation appeared to be smaller, as compared with wild-type cells. Responses were weak or absent when CD3 was cross-linked alone. In contrast, in a mutant in which association of CD3-zeta 2 with the TCR-CD3 was defective, cross-linking of CD3 with CD4 had a weaker effect on any of the activation parameters tested. These experiments showed that the presence of CD3-zeta 2 in the TCR-CD3 complex is of critical importance for the ability of CD4 to enhance early transducing signals inside the cell. The data also suggest that CD4-associated protein tyrosine kinase p56lck could up-regulate defective CD3-mediated induction of phospholipase C activity by increasing tyrosine phosphorylation of phospholipase C-gamma 1.

Amino Acid Sequence

The CD2 antigen associates with the T-cell antigen receptor CD3 antigen complex on the surface of human T lymphocytes.

T lymphocytes can be activated by various stimuli directed either against the T-cell antigen receptor-CD3 antigen complex (Ti-CD3) or the CD2 molecule; see ref. 1 for a review. Activation signals generated by antigen binding to the antigen-specific alpha/beta heterodimer (Ti) are thought to be transduced via the invariant CD3 gamma, epsilon and delta chains, and the associated zeta and eta subunits. The physiological role of the interaction of CD2 with its homologous cell-surface associated ligand LFA-3 remains to be fully elucidated. It has been suggested that CD2 regulates an antigen-independent pathway of activation or that signals delivered via CD2 are an integral part of the antigen-specific pathway. Several recent studies have indicated a requirement for the Ti-CD3 complex in CD2 signalling. Thus, mutant T-cell lines expressing CD2, but not Ti-CD3, on the cell surface cannot be activated via the CD2 molecules. Functional interaction between the Ti-CD3 complex and the CD2 antigen suggests that these T-lymphocyte cell-surface structures are physically associated. Here we use a digitonin-based solubilization procedure to explore this possibility and show that 40% of the cell-surface CD2 molecules can be specifically co-precipitated in association with the Ti-CD3 complex.

Antigens, Differentiation, T-Lymphocyte

T-cell receptor-CD4 physical association in a murine T-cell hybridoma: induction by antigen receptor ligation.

By employing flow cytometric analysis and fluorescence resonance energy transfer (FRET), we examined the physical relationship between the T-cell receptor-CD3 complex (Ti-CD3) and the CD4 molecule on helper T cells. Through the use of an L3T4-negative murine T-cell hybridoma infectant expressing the human CD4 gene and having antigen specificity for HLA-DR, we show that binding of the Ti-CD3 complex with an anti-CD3 monoclonal antibody induces its redistribution proximal to cell-surface CD4. FRET efficiency was 9.4% on cells labeled with rhodaminated anti-CD3 and fluoresceinated anti-CD4. FRET was found to be temperature dependent, since similarly treated cells held at 4 degrees C displayed a FRET efficiency of less than 1%. Energy transfer was evident within 3 min after warming cells to 37 degrees C. Energy transfer was not detected between Ti-CD3 and the abundantly expressed leukocyte common antigen (CD45). Of greater significance was our observation that hybridomas infected with a truncated CD4 gene lacking the cytoplasmic domain failed to transfer energy despite the fact that CD4 was expressed on the cell surface at levels equivalent to or greater than the wild type. These studies suggest that after crosslinking of the Ti-CD3 on CD4+ T cells, a physical association occurs between the antigen receptor complex and CD4 and that the association is dependent upon the presence of the cytoplasmic domain of CD4.

Animals

Interaction of pertussis toxin with human T lymphocytes.

The binding of pertussis toxin (PT) to the human T-cell line Jurkat was examined by using flow cytometry. Fluorescein isothiocyanate (FITC)-labeled PT bound rapidly to the cells in a specific manner as determined by blocking experiments with unlabeled toxin, B oligomer, and the S2-S4 and S3-S4 dimers. Monoclonal antibodies against the S3 subunit of the toxin also significantly inhibited the binding of FITC-PT. Sialidase treatment of the cells resulted in decreased binding of FITC-PT, indicating that sialic acid residues are involved in the binding process. In addition, we studied the effect of PT binding on the expression of cell surface molecules. On binding of PT to the cell surface, a rapid down-regulation of the T-cell receptor (TCR)-CD3 complex was observed. The modulation of the TCR-CD3 complex was independent of the toxin's enzymatic activity, as the B oligomer and a nonenzymatic toxin mutant induced modulation comparable to that caused by the native holotoxin. Isolated dimers did not cause down-regulation. Stimulation of the TCR-CD3 complex, leading to reduced cell surface expression of this complex, provides a possible explanation for the second messenger production associated with the interaction of PT or B oligomer with T lymphocytes. We therefore conclude that PT activates T cells by divalent binding to the TCR-CD3 complex itself or by binding a structure closely associated with it.

Antibodies, Monoclonal

Proliferative properties of murine intestinal intraepithelial lymphocytes (IEL): IEL expressing TCR alpha beta or TCR tau delta are largely unresponsive to proliferative signals mediated via conventional stimulation of the CD3-TCR complex.

Murine intestinal intraepithelial lymphocytes (IEL) were studied for their capacity to proliferate in vitro following stimulation of the T cell receptor (TCR)-associated CD3 epsilon molecule, or upon direct stimulation of the TCR complex itself. Although IEL consisted primarily of CD3+ T cells which included activated cytotoxic T lymphocytes as demonstrated in CD3- and TCR-mediated redirected cytotoxic assays, IEL displayed minimal proliferative responses following stimulation with anti-CD3, anti-TCR alpha beta, or anti-TCR tau delta monoclonal antibodies under soluble conditions, or under conditions which effect membrane cross-linking, including the addition of accessory cells to IEL cultures. The lack of proliferation induction could not be overcome by stimulation of IEL in the presence of T cell-dependent cytokines, phorbol ester, or interleukin-4. Moreover, unlike splenic T cells, stimulation of IEL failed to result in expression of interleukin-2 receptor, further demonstrating an inability of IEL to respond to exogenous proliferative signals. This study is the first to examine the proliferative potential of murine IEL following direct CD3 or TCR stimulation. The findings described here: (i) identify an important functional distinction between intestinal IEL and other peripheral alpha beta or tau delta T cells which generally respond well to proliferative signals mediated through the CD3-TCR complex, and (ii) demonstrate that on murine IEL the CD3-TCR complex can discriminate signals of lytic activity from those of cell proliferation.

Animals

Monoclonal antibodies directed to different epitopes in the CD3-TCR complex induce different states of competence in resting human T cells.

After the initial stages of activation, T cells are not able to proliferate on their own but become competent to proliferate in response to exogenously added lymphokines. In the present study we compared the capacity of mAb directed to CD3 (OKT3, Leu4, UCHT1) or to common epitopes on the alpha/beta T-cell receptor (BMA 031, BMA 032) to induce competence in purified resting T cells. Stimulation with either soluble anti-CD3 or anti-alpha/beta TCR mAb rendered cells competent to progress to DNA synthesis in response to exogenous IL-2. In contrast, only soluble BMA 031 and BMA 032 were able to induce responsiveness to IL-4; anti-CD3 mAb had either to be immobilized or used in combination with anti-CD28 mAb to induce responsiveness to IL-4. Further, BMA 031-induced IL-4 responsiveness was selectively found in the CD45RA+ T cell subset. Analysis of early activation events revealed that the capacity of soluble BMA 031 and BMA 032 to induce responsiveness to IL-4 did not correlate with the ability of these mAb to increase the level of cytosolic Ca2+ or to induce detectable tyrosine phosphorylation. On the other hand, soluble Leu4 (anti-CD3) triggered an increase in both intracellular Ca2+ and tyrosine phosphorylation but was unable to induce IL-4 responsiveness. These data indicate that the induction of IL-2 and IL-4 responsiveness requires different sets of activation signals which can be induced by stimulating different epitopes in the CD3-TCR complex. This supports the concept that distinct activation pathways are coupled to the CD3-TCR complex.

Antibodies, Monoclonal

Two monoclonal anti-CD3 antibodies can induce different events in human T lymphocyte activation.

Two monoclonal antibodies, WT32 and CLB-T3/4.2a, directed against the CD3 complex were used to study the mechanism of activation of human peripheral T lymphocytes. WT32, a mouse monoclonal IgG2a antibody with a low avidity (much less than OKT3) for the CD3 complex, effectively induces mitogenesis of purified T lymphocytes when used in the 1 ng-10 micrograms range in the presence of monocytes or recombinant interleukin 2 (IL2). In contrast, CLB-T3/4.2a, a mouse monoclonal antibody of the same isotype with a high avidity (much greater than OKT3) for the CD3 complex, induces IL2 receptor expression and IL2 responsiveness only at very low concentrations (less than 5 ng/ml), yet in the presence of monocytes this antibody induces proliferation within a similar dose range as WT32. Apparently, in the absence of accessory cells which can cross-link the antibody CD3 complexes, the binding properties (avidity) of an antibody and thereby the number of receptors that are occupied are important parameters for induction of IL2 responsiveness. Furthermore, we show that Ca2+ mobilization only occurs when the cells are stimulated by saturating amounts of antibody, so that, when the conditions are optimal for the induction of IL2 responsiveness, no Ca2+ mobilization will be detected.

Antibodies, Monoclonal

T cell receptor activation of a ribosomal S6 kinase activity.

Stimulation of the T cell receptor-CD3 complex activates multiple signal transduction pathways, including serine/threonine and tyrosine protein kinases. Stimulation of the human T cell line Jurkat via the T cell receptor-CD3 complex with anti-CD3 monoclonal antibody or incubation with the tumor promoter phorbol 12-myristate 13-acetate caused increases in S6 kinase and microtubule-associated protein 2 (MAP) kinase activities. An S6 kinase activity that was able to phosphorylate exogenous 40S ribosomal S6 protein was recovered in immunoprecipitates obtained using a 90-kDa ribosomal S6 kinase-specific antiserum and thus represents activation of a member of the 90-kDa ribosomal S6 kinase family. Stimulation of the S6 kinase activity correlated with an increase in a kinase activity able to phosphorylate exogenous 90-kDa ribosomal S6 kinase (rsk) attributed to a MAP kinase activity. These increases in S6 and MAP kinase activities further correlated with the appearance of a 42-kDa phosphoprotein detected by anti-phosphotyrosine immunoblotting. However, while the tyrosine phosphorylation of the 42-kDa protein and the MAP kinase activity are dependent on protein kinase C activity, residual S6 kinase activity can be detected following protein kinase C depletion and subsequent anti-CD3 stimulation. Thus, T cell activation through the T cell receptor-CD3 complex results in activation of a member of the 90-kDa S6 kinase family which correlates with, but can be independent of, MAP kinase activation.

Enzyme Activation

Stimulation of the T-cell receptors CD3 and CD2 with OKT3 and OKT11 antibodies activates a common pertussis toxin-insensitive G-protein.

The association of G-proteins with the T-cell-specific receptor structures CD3 and CD2 was investigated. High-affinity GTPase activity in membrane preparations of the human leukemic T-cell line Jurkat could be induced by the monoclonal antibodies OKT3 (anti-CD3) and OKT11 (anti-CD2). When combining maximally active concentrations of OKT3 and OKT11, no additive effect was seen on GTPase activity. In mutant Jurkat cells lacking the CD3 complex but with an intact CD2 receptor, neither OKT3 nor OKT11 could stimulate GTPase activity. Activation of CD3 and CD2 by monoclonal antibodies also stimulated phospholipase C activity as measured by breakdown of membrane phosphoinositides in wild-type but not in mutant Jurkat cells. Neither GTPase nor phospholipase C activation was sensitive to pretreatment with doses of pertussis toxin (PTX) that caused ADP ribosylation of a sensitive G-protein. Our data show that the CD3 complex and the CD2 receptor may activate a common PTX-insensitive G-protein. The CD2 receptor appears to stimulate the G-protein by interacting with the CD3 complex. The data are compatible with, but do not prove, that this G-protein is involved in the activation of phospholipase C by the two receptors.

Adenosine Diphosphate Ribose

Delineation of chicken thymocytes by CD3-TCR complex, CD4 and CD8 antigen expression reveals phylogenically conserved and novel thymocyte subsets.

To further define the relationship between thymocyte subsets and their developmental sequence, multi-parameter flow cytometry was used to determine the distribution of the CD3-TCR complex and the accessory molecules CD4 and CD8 on chicken thymocytes. As in mammals, adult thymocytes could be subdivided into CD3-, CD3lo, and CD3hi staining populations. CD4 and CD8 distribution on such populations revealed the presence of CD3-CD4+CD8- and CD3-CD4-CD8+ thymocytes, putative precursors to CD4+CD8+ cells, detectable in the adult and at high frequency during ontogeny. Of particular interest was the existence of CD3lo expression on CD4+CD8- and CD4-CD8+, and in some instances, on CD4-CD8- thymocytes. Such phenotypes are not easily detectable in the mammalian thymus but were readily observed in both adult and embryonic chicken thymus from 16 days of embryogenesis. Further analysis of the TCR lineage of these CD3lo cells revealed that they were essentially all of the alpha beta TCR type. Mature CD3hi thymocytes were found within the CD4+CD8+ and CD4+CD8- and CD4-CD8+ subsets. Both alpha beta and gamma delta TCR lineage thymocytes were detected within all CD4- and CD8-defined subsets, thus identifying novel thymocyte subsets in the chicken thymus, namely alpha beta TCR+CD4-CD8- and gamma delta TCR+ CD4+CD8- cells. Hence, this analysis of chicken thymocytes, while confirming the phylogenically conserved nature of the thymus, has revealed novel T cell subsets, providing further insight into the complexity of mainstream thymocyte maturation pathways.

Animals

CD3-negative lymphokine-activated cytotoxic cells express the CD3 epsilon gene.

The expression of genes encoding different polypeptide chains of the TCR-CD3 complex was analyzed in a panel of cloned MHC-unrestricted cytotoxic cells. The clones were derived from CD3+ and CD3- human PBL. After expansion in rIL-2, all clones were able to lyse the NK-sensitive target cell line K562. In contrast, lysis of fresh tumor cells was achieved almost exclusively by CD3- clones. To test whether a known TCR-CD3 complex may be involved in MHC-unrestricted cytotoxicity, total RNA from nine CD3+ and 11 CD3- clones was isolated and hybridized with DNA probes for the TCR alpha-, beta-, and gamma-chains and for the CD3 gamma-, delta-, and epsilon-chains. TCR gamma transcripts were present at high levels in CD3+CD4- CD8- clones but were undetectable in all CD3- clones. Lysis of fresh tumor cells is an activity which can be independent of the TCR alpha beta and TCR gamma complexes because the CD3- clones did not express these TCR genes. Interestingly, all CD3- clones expressed CD3 epsilon transcripts, but not CD3 gamma- or delta-transcripts. CD3- lymphokine-activated cytotoxic cells may therefore be derived from immature T cells which do not yet express a complete CD3 complex. The CD3 epsilon chain, if expressed in CD3- cells in association with other molecules, could be involved in the activation and lytic function of these MHC-unrestricted cytotoxic cells.

Antigens, Surface

Dephosphorylation of pp19: a common second signal for human T cell activation mediated through different accessory molecules.

Accessory molecules are thought to provide essential regulatory signals for T cell activation. In order to identify specific intracellular events linked to triggering through accessory surface receptors, mAbs against CD2, CD3, CD4, and CD8 were employed to activate resting human T lymphocytes in vitro. Subsequently, intracellular phosphorylation of phosphoprotein (pp) 19, a recently identified substrate of a serine phosphatase involved in CD2 mediated T cell triggering, as well as functional parameters (responsiveness to IL-6, production of IL-2 and IFN-gamma) were determined. As in responses to CD2 mAbs, cross-linking of CD4 and/or CD8 to the TCR-CD3 complex but not CD3 cross-linking alone promoted pp19 dephosphorylation. This early event was in all cases followed by particular late functional responses, i.e. induction of IL-6 responsiveness and secretion of IL-2. In marked contrast, no relationship was found between pp19 dephosphorylation and IFN-gamma production. Taken together, a common intracellular pathway appears to exist in which signals mediated through CD2, CD4, and CD8 merge to promote monokine responsiveness and IL-2 production in human T cells. Dephosphorylation of pp19 thus appears to represent a process which is linked to critical 'second signals' involved in the generation of antigen induced T cell responses.

Antibodies, Monoclonal

T cell antigen receptor-mediated activation of phospholipase C requires tyrosine phosphorylation.

Triggering of the antigen-specific T cell receptor-CD3 complex (TCR-CD3) stimulates a rapid phospholipase C-mediated hydrolysis of inositol phospholipids, resulting in the production of second messengers and in T cell activation and proliferation. The role of tyrosine phosphorylation in these events was investigated with a tyrosine protein kinase (TPK) inhibitor, genistein. At doses that inhibited TPK activity and tyrosine phosphorylation of the TCR zeta subunit, but not phospholipase C activity, genistein prevented TCR-CD3-mediated phospholipase C activation, interleukin-2 receptor expression, and T cell proliferation. These findings indicate that tyrosine phosphorylation is an early and critical event that most likely precedes, and is a prerequisite for, inositol phospholipid breakdown during receptor-mediated T cell activation.

Antigens, Differentiation, T-Lymphocyte

Anti-CD3 antibody-induced activated killer cells subsets of killer cells that mediate fast or slow lytic reactions.

The present study has characterized two sets of alpha CD3-induced activated killer cells (CD3-AK). A 2 to 4-h 51Cr release assay or triton-treated 125IUdR release assay demonstrated that CD3-AK cultured in the continuous presence of alpha CD3 (CD3-AK+) mediated fast lysis. A 20-h 51Cr or 125I-deoxyuridine release assay demonstrated that CD3-AK cultured in the absence of alpha CD3 (CD3-AK-) mediated slow lysis. Activating the TCR-CD3 complex of CD3-AK- cells with alpha CD3 for 2 h enabled the killer cells to mediate fast lysis. The activation process was inhibited by H-7, a protein kinase C (PKC) inhibitor. Conversely, removal of alpha CD3 from CD3-AK+ cell cultures for 24 h resulted in almost complete loss of the ability of CD3-AK+ cells to mediate fast lysis, but they still retained the ability to mediate slow lysis. It appeared that constant perturbation of CD3 by alpha CD3 maintained the CD3-AK+ cells in an active state, and thus, they were able to mediate fast lysis. On the other hand, activation by a 2-h incubation with PMA could convert the noncytolytic CD3-AK- cells to be cytolytic in slow lysis and to augment the slow lytic reactions mediated by CD3-AK- cell with low cytolytic activity. These results were confirmed by triton-treated 125IUdR release assay which could detect early DNA-release. Thus it appeared that activation of CD3-AK cells with T cell activation signals that bypassed TCR (such as PMA) could induce slow lysis. In the effector phase of lytic reactions, the fast lytic reaction was relatively resistant to inhibition by H-7, whereas the slow lytic reaction was susceptible to H-7 inhibition, indicating that fast lysis was PKC independent and slow lysis was PKC dependent. It was further found that H-7 inhibition was at an early stage of slow lysis, suggesting that a PKC dependent activation process preceded the PKC independent lytic process. These findings indicated that the CD3-AK- cells were in a less activated state which required further activation to turn on their lytic machinery to initiate the lytic reaction.

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine

Prostaglandin E2 inhibits human T-cell proliferation after crosslinking of the CD3-Ti complex by directly affecting T cells at an early step of the activation process.

We have studied the effects of prostaglandin E2 (PGE2) on in vitro human T-cell activation induced by crosslinking of the CD3-Ti complex with the monoclonal anti-CD3 antibodies OKT3 and UCHT-1. PGE2 (greater than or equal to 3 X 10(-9) M) when added simultaneously with anti-CD3 to cultures of peripheral blood mononuclear cells (PBMC), significantly suppressed, in a dose-dependent way, T-cell proliferation (P less than 0.002). However, when T cells were first preactivated with OKT3 for 3 days, subsequent proliferation driven by recombinant interleukin 2 (IL-2) was not inhibited by addition of PGE2. This indicates that PGE2 affects the activation step resulting from crosslinking of CD3-Ti, but not the IL-2-driven proliferative phase. Other manifestations of T-cell activation were therefore examined. Both IL-2 production and the expression of receptors for IL-2 (as detected with the anti-Tac monoclonal antibody) were inhibited by PGE2. The addition of purified interleukin 1 (IL-1) or recombinant IL-2 to the cultures did not reverse the inhibiting effect of PGE2 on IL-2-receptor expression. PGE2, added at the time of culture initiation, also inhibited T-cell proliferation in cultures which were supplemented with exogenous IL-1 or IL-2. Proof for a direct effect of PGE2 on T cells was obtained in experiments in which monocyte-depleted T cells were stimulated, in the presence of IL-1, with solid-phase-bound anti-CD3 antibody. Proliferation of T cells in this system is accessory cell independent and still was strongly inhibited by PGE2. Finally, preincubation of PBMC with PGE2 (3 X 10(-6) M) for 48 hr did not result in the generation of suppressor cells for anti-CD3-induced T-cell proliferation or for IL-2 production. Our results demonstrate that PGE2 has a direct inhibitory effect on an early step of T-cell activation, resulting in decreased IL-2 production, decreased IL-2-receptor expression, decreased responsiveness to exogenous IL-2, and decreased proliferation. However, PGE2 does not affect IL-2-driven proliferation of activated T cells. The inhibitory effect on T-cell activation is not mediated through suppressor T cells, nor through inhibition of accessory cell function.

Adult