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Biology of germinal centers in lymphoid tissue.

Germinal centers in lymphoid tissue are the sites of generation of memory B cells undergoing isotype switching and somatic mutation in their Ig genes. Their formation cannot be induced by stimuli other than immunogenic ones. It seems likely that in the function and possibly also in the formation of germinal centers, one important factor is the localization of immune complexes with fixed complement on the surface of follicular dendritic cells. CD4+ T cells, located primarily in the "apical light zones" of the centers, are necessary for germinal center formation. However, their exact role in the process needs clarification, as both cell to cell contact and cytokine production could be involved at different stages of the germinal center generation. These T cells are usually specific for the antigen inducing the germinal center, but they may sometimes respond to other surface components on the B cell surface. In view of the possible stimulatory role of CD4+ T cells in follicular center-derived lymphomas, the functional significance of these T cells in germinal center proliferation is important to unravel. The B cells in germinal centers proliferate extremely rapidly, especially those located in the "dark zones." Many of them undergo apoptosis, particularly in the "basal light zones." The microenvironment of these centers is well suited to the task of expanding and selecting memory B cells of high affinity for the inducing antigen. The interactions of the proliferating B cells with dendritic cells and T cells, unevenly distributed in the various zones of the germinal center, are thought to determine which cells deserve rescue from apoptosis and induction to differentiation into small resting memory B cells. The memory B cells that emerge from the germinal center bear sIg, usually of "switched" isotype, and exhibit somatic mutations in the variable regions of their rearranged Ig genes.

Aging↗

Primary renal lymphoma of mucosa-associated lymphoid tissue.

Mucosa-associated lymphoid tissue-type lymphomas have recently been recognized as a distinctive form of B-cell malignant lymphoma. In contrast to other types of low-grade lymphomas, these tumors have a tendency to be localized at diagnosis and to be curable with local therapy. We report an unusual case of primary localized low-grade lymphoma of mucosa-associated lymphoid tissue arising in the kidney. The patient underwent radical nephrectomy and was free of disease at 28 months of follow-up without additional treatment. Once properly staged and classified, lymphoma of mucosa-associated lymphoid tissue involving the kidney can be managed by radical nephrectomy and follow-up.

Adult↗

Role of sphingosine 1-phosphate receptor type 1 in lymphocyte egress from secondary lymphoid tissues and thymus.

Circulation of mature lymphocytes between blood and secondary lymphoid tissues plays a central role in the immune system. Homing of lymphocytes from blood into secondary lymphoid tissues beyond high endothelial venules is highly dependent on the interaction between the chemokines CCL19, CCL21, CXCL12, and CXCL13, and their receptors CCR7, CXCR4 and CXCR5. However, the molecular mechanism(s) of lymphocyte egress from secondary lymphoid tissues to lymph remained unclear. We have found a new class of immunomodulator, FTY720 by chemical modification of vegetative wasp-derived natural product, ISP-I (myriocin). FTY720 has been shown to be highly effective in experimental allograft and autoimmune disease models. A striking feature of FTY720 is the induction of a marked decrease in peripheral blood lymphocytes at doses that show immunomodulating activity in these models. The reduction of circulating lymphocytes by FTY720 is caused by sequestration of lymphocytes into secondary lymphoid tissues and thymus. FTY720 is rapidly converted to (S)-enantiomer of FTY720-phosphate [(S)-FTY720-P] by sphingosine kinase 2 in vivo. (S)-FTY720-P acting as a potent agonist of S1P receptor type 1 (S1P1), induces long-term down-regulation of S1P1 on lymphocytes, and thereby inhibits the migration of lymphocytes toward S1P. Thus, it is presumed that FTY720-induced lymphocyte sequestration is due to the inhibition of S1P/S1P1-dependent lymphocyte egress from secondary lymphoid tissues and thymus by its active metabolite (S)-FTY720-P. Throughout the analysis of the mechanism of action of FTY720, it is clarified that S1P/S1P1 interaction plays an important role for lymphocyte egress from secondary lymphoid tissues and thymus.

Animals↗

An immunohistochemical study on the postnatal development of rat nasal-associated lymphoid tissue (NALT).

This study concerns the development of nasal-associated lymphoid tissue in the rat, using immuno- and enzyme-histochemical staining techniques on cryostat sections. Nasal-associated lymphoid tissue is present at birth as a small accumulation of mainly T lymphocytes and nonlymphoid cells; B cells are rare. Distinct areas of T and B cells appear at 10 days after birth; by that time high endothelial venules are also observed. Intra-epithelial lymphocytes are present, most of them being T-helper cells. ED1+ macrophages are seen throughout the tissue. The proportion of ED1+ cells does not change during ontogeny. ED2+ cells (tissue macrophages) are present predominantly at the border between the lymphoid tissue and the surrounding connective tissue, in all age-groups. ED3+ mononuclear cells are scattered throughout the nasal-associated lymphoid tissue of young animals. Later on, the ED3+ cells migrate into the border-area between lymphoid and connective tissue. Ia+ non-lymphoid cells in the nasal lymphoid tissue increase in number during ontogeny. Only a few of them show acid phosphatase activity, indicating that the proportion of classical scavenger macrophages is low. Some of them may be antigen presenting (dendritic) cells. Ia+ dendritic cells also occur between the epithelial cells. Moreover, some epithelial cells express the Ia marker.

Aging↗

Nasal lymphoid tissue in the rat.

The structure and organization of paired lymphoid tissue in the nasal mucosa, situated in the transitional zone on both sides of the septal opening of the pharyngeal duct, of conventionally-housed rats was examined by light microscopy and scanning and transmission electron microscopy. Each lymphoid structure consisted of follicles containing T- and B-cell areas, and was covered with specialized epithelium. This epithelium consisted of cuboidal ciliated cells with oval nuclei parallel to the basal lamina. Goblet cells were sparse. Occasionally, islands of microvilli-bearing cells (so called membraneous or M cells) covered the lymphoid structures. M Cells were also found as single cells among the ciliated cells. The morphological characteristics and the particular localization justify the conclusion that the nasal lymphoid tissue described belongs to the mucosa-associated lymphoid tissue. It is therefore suggested that this nasal structure be designated nasal lymphoid tissue.

Animals↗

Enhanced HIV-1 replication by chemokines constitutively expressed in secondary lymphoid tissues.

Persistent infection of human immunodeficiency virus (HIV) takes place in the secondary lymphoid tissues even during clinically latent stages. The CC chemokines secondary lymphoid tissue chemokine (SLC) and EBI1-ligand chemokine (ELC) are constitutively expressed in the secondary lymphoid tissues. They share CCR7 expressed on lymphocytes and mature dendritic cells and play key roles in the trafficking of these types of cells into the secondary lymphoid tissues. Here we report that growth of both X4 and R5 strains of HIV-1 in activated peripheral blood T cells was enhanced by SLC. The enhancing effect of SLC was abrogated by pretreatment of cells with pertussis toxin, indicating the involvement of signaling via a receptor coupled with a Galphai class of G-protein. Furthermore, SLC was found to enhance the promoter activity of HIV-1 LTR. These results suggest that signaling via CCR7 has a strong positive effect on HIV growth. Thus, SLC and ELC may contribute to persistent infection of HIV in the secondary lymphoid tissues by promoting viral replication in activated T cells.

Adult↗

Disappearance of gastric mucosa-associated lymphoid tissue in hepatitis C virus-positive patients after anti-hepatitis C virus therapy.

OBJECTIVE: Mucosa-associated lymphoid tissue, which has a follicular structure closely resembling Peyer patches, is absent in the normal gastric mucosa, but it can develop in several chronic conditions. Since we recently detected hepatitis C virus-RNA in gastric mucosa-associated lymphoid tissue of patients with chronic hepatitis C, we tried to treat hepatitis C virus infection to evaluate the effect of antiviral therapy on gastric mucosa-associated lymphoid tissue. METHODS: Eighteen patients (12 men and 6 women; mean age: 52 years, range: 33-71 years) affected by chronic hepatitis C virus and with gastric mucosa-associated lymphoid tissue were enrolled. We enrolled only patients hepatitis C virus-positive, mucosa-associated lymphoid tissue-positive, and Helicobacter pylori-negative (8 patients) or hepatitis C virus-positive patients in whom anti-H. pylori therapy did not obtain disappearance of gastric mucosa-associated lymphoid tissue (10 patients). Hepatitis C virus was evaluated by hepatic biopsy with histologic evaluation and serologic examination; Gastric mucosa-associated lymphoid tissue was scored using Wotherspoon score. All patients were treated with recombinant leukocyte interferon-alpha-2b plus oral ribavirin for 6 months. The hepatitis C virus RNA was assayed at entry and at 3 months after stopping treatment. Virologic response was defined as undetectable levels of serum hepatitis C virus RNA 3 months after stopping treatment; esophagogastroduodenoscopy was repeated at this time to evaluate the effect of anti-hepatitis C virus therapy on acquired gastric mucosa-associated lymphoid tissue. RESULTS: Two (11.11%) patients were withdrawn from the study. Hepatitis C virus cure was obtained in 11/16 patients (68.75%), and in all of them we obtained disappearance of gastric mucosa-associated lymphoid tissue (P < 0.01). Hepatitis C virus infection persisted, but with very lower levels, in 5 of 16 patients (31.25%): in 3 patients gastric mucosa-associated lymphoid tissue persisted (but in 2 it decreased from grade 3 to grade 2), while in 2 it disappeared. CONCLUSIONS: We showed clearly that there is a strict correlation between hepatitis C virus infection and acquired MALT, obtaining the disappearance of this acquired immunologic acquired gastric tissue curing hepatitis C virus infection. However, further studies are needed to clarify there is the same correlation between hepatitis C virus infection and gastric mucosa-associated lymphoid tissue lymphomas in hepatitis C virus-positive patients.

Adult↗

B cells and T-lymphocyte subsets of the head-associated lymphoid tissues of the chicken.

The head-associated lymphoid tissues of the chicken, composed of the harderian gland and the conjunctiva-associated lymphoid tissue (CALT), were studied to determine whether changes occurred in lymphocyte subpopulations as chickens age from 1 week to 8 weeks. The B cells and subpopulations of T-lymphocytes of the head-associated lymphoid tissues were identified using in situ immunohistochemical staining. Monoclonal antibodies specific for various lymphocyte surface antigens were used. The concentration of T-lymphocytes, particularly CD3+ and CD4+ cells, within the harderian gland increased with age, whereas the concentration of B cells remained the same. B-lymphocytes were observed within the germinal centers of the CALT of 4-week-old birds. The T-lymphocytes within the CALT surrounded the B-cell-rich germinal centers. CD3+ T-lymphocytes were the predominant cell population in all age groups examined. Increasing concentrations of CD3+, CD4+, and CD8+ T-lymphocytes were observed within the CALT as chicks developed from 1 week to 4 weeks of age. Finally, no changes were observed in lymphocyte populations within the CALT as chicks developed from 4 weeks to 8 weeks of age.

Aging↗

Immunoarchitecture of lymphoid tissue in HIV-infection during antiretroviral therapy correlates with viral persistence.

Plasma viral load and T-cell subset determinations in blood are the markers used for monitoring HIV-1 infection. However, key pathogenesis events, viral replication and most immunologic changes occur in the lymphoid tissues. We have studied the tonsillar biopsies of 30 patients in the early stages of the disease, before initiating treatment and after 12 and 36 months of fully effective highly active antiretroviral therapy. We have investigated the HIV RNA by polymerase chain reaction (lymphoid tissue viral load), the immunohistochemical HIV-p24 antigen expression, as well as the lymphoid tissue architecture and lymphoid cell subsets using morphometry. The lymphoid tissue viral load and the immunoexpression of p24, which was found to be mainly associated with follicular dendritic cells, decreased significantly after treatment, but did not disappear in all cases, even after 36 months of treatment. A significant improvement of the lymphoid tissue architecture was also observed after treatment, with recovery of follicular structures. These histological changes correlated with the lymphoid tissue viral load. Moreover, the counts of CD4+ increased whereas CD8+ and cytotoxic lymphocytes (CD8+ granzyme B+) decreased significantly, the latter in both interfollicular and intrafollicular areas. However, these cellular counts after treatment did not reach those of lymphoid tissue of non-HIV-infected patients used as control cases. Naive (CD45RA+) and memory (CD45RO+) cells also improved significantly after treatment. In conclusion, in HIV-infection the impact of treatment can only be assessed completely in the lymphoid tissue reservoir, where most of the virus is stored and associated with follicular dendritic cells. Highly active antiretroviral therapy produces a significant recovery of lymphoid tissue architecture and lymphoid cell subsets, which are associated with the decrease of lymphoid tissue viral load. However, these parameters studied in lymphoid tissue are not re-established completely, even after 36 months of highly active antiretroviral therapy.

Adult↗

An excess of dietary iodine accelerates the development of a thyroid-associated lymphoid tissue in autoimmune prone BB rats.

Previous studies have shown that dietary iodine enhances the severity and incidence of focal thyroiditis in autoimmune BB rats and OS chickens. However, which lymphoid cells are involved in the development of the iodine-induced focal thyroiditis and what the consequences are for the anticolloid antibody production have not been studied in detail. We therefore performed a study in which 3-week-old female BB rats were kept on either an enriched iodine diet (EID; iodine intake, 100 micrograms iodine/day) or a normal iodine diet (NID; iodine intake, 7 micrograms iodine/day) for a period of 18 weeks. The development of the focal thyroiditis was immunohistologically studied. Immunohistological data were compared to the thyroid hormone status and anti-colloid antibody production. Our data confirm that a high dietary iodine intake results in an accelerated development of the focal lymphoid cell infiltrates in the thyroid of the BB rat. After 12-18 weeks of an EID 50% of the BB rats developed these infiltrates. Our data additionally show that: (a) the process starts with increases in the number of infiltrating MHC class II-positive dendritic cells and a clustering of these cells with T cells, B cells, and some macrophages and (b) the focal infiltrates are highly organized and consist of central B cell follicle-like structures surrounded by rims and areas of T cells. The architecture of the focal thyroiditis is hence very similar to mucosa-associated lymphoid tissue and secondary lymphoid organs (spleen and lymph node). Only minor signs of thyrocyte destruction were observed. We therefore consider the term "thyroiditis" as inappropriate and prefer the term "thyroid-associated lymphoid tissue." Since the thyroiditis component was small, it is also not surprising that the BB rats on the EID remained euthyroid. The presence of the thyroid-associated lymphoid tissue in the BB rats was positively correlated to the presence of anti-colloid antibody in the serum of the BB rats. We speculate that the dietary iodine might have direct effects on cells of the immune system or on cells forming the microenvironment of lymphoid tissue (reticulum cells). A role for highly iodinated thyroglobulin in the accelerated development of thyroid-associated lymphoid tissue is also possible.

Animals↗

[Pulmonary mucosa-associated lymphoid tissue lymphoma in a patient with myasthenia gravis].

Mucosa-associated lymphoid tissue lymphomas are a subgroup of non-Hodgkin's lymphoma. The lung is the most frequent non-gastrointestinal organ they affect. Pulmonary mucosa-associated lymphoid tissue lymphoma usually appears as a solitary mass often accidentally discovered on chest radiography. Diffuse, bilateral involvement is rare. The association of mucosa-associated lymphoid tissue lymphoma with autoimmune diseases has been reported, and a pathogenetic role has been suggested for the autoimmune process in its development. Optimum management has not yet been standardized. The case described here is a mucosa-associated lymphoid tissue lymphoma with multiple, unusually large opacities involving both lungs. The patient, a 55-year-old woman, also suffered from myasthenia gravis, an autoimmune disease characterized by an autoaggressive process against the acetylcholine receptors. Whereas other autoimmune diseases such as rheumatoid arthritis, polymyositis, and fibrosing alveolitis have been correlated with mucosa-associated lymphoid tissue lymphoma, an association between this lymphoma and myasthenia gravis has not yet been reported. Complete resolution of the pulmonary opacities was obtained with cyclophosphamide treatment. It continues at 15 months after the suspension of therapy.

Antineoplastic Agents, Alkylating↗

Regulation of tissue-selective T-lymphocyte homing receptors during the virgin to memory/effector cell transition in human secondary lymphoid tissues.

Conventional virgin T cells efficiently and homogeneously recirculate through all secondary lymphoid tissues, but not "extralymphoid" effector sites. In contrast, memory/effector populations are composed of distinct subsets with differential, often tissue-selective, migratory capability to both secondary lymphoid tissues and effector sites. In keeping with these observations, CD45RA(high)/RO(low) virgin T cells in human peripheral blood uniformly express the peripheral lymph node (PLN) homing receptor (HR) L-selectin, and lack the skin-selective HR CLA, whereas among the CD45RA(low)/RO(high) "memory/effector" population, differential expression of these HR yields three predominant subsets: L-selectin+/CLA+, L-selectin+/CLA-, L-selectin-/CLA-. Although these subsets are of approximately equal size in the peripheral blood, the vast majority of T cells obtained from cutaneous chronic inflammatory sites display the L-selectin+/CLA+ phenotype. To investigate the mechanisms responsible for the generation of these memory/effector T-cell subsets, we developed a multiparameter flow cytometric technique that defines a common pathway of postthymic T-cell differentiation in secondary lymphoid tissues: the virgin to memory/effector transition. Our analyses indicate that these HR are differentially regulated during the virgin to memory/effector transition in a tissue-specific fashion. The great majority of memory/effector T cells produced in PLN retain high levels of L-selectin expression, and 50 to 60% upregulate CLA. In contrast, memory/effector T cells produced in appendix and tonsil are generally L-selectin(low), and CLA is upregulated on less than 10% of newly formed memory/effector T cells in appendix and on about 30 to 35% of such cells in tonsil.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Morphologic characterization of conjunctiva-associated lymphoid tissue in chickens.

Conjunctiva-associated lymphoid tissue (CALT) in the eyelids of chickens was studied by gross, histologic, and electron microscopic techniques. Structural features were characterized at 1 day of age and at posthatching week (PHW) 1, 2, 3, 4, 6, 8, 12, and 16. Beginning at PHW 1, prominent lymphoid nodules containing a heterogenous population of lymphocytes, lymphoblasts, and macrophages were first observed within conjunctival folds and fissures of the lower eyelid. Nodules contained germinal centers by PHW 2 and plasma cells by PHW 4. The epithelium associated with these nodules was flat, had short, irregular microvilli, contained intraepithelial lymphocytes, and lacked goblet cells. High endothelial venules were located at the base of lymphoid nodules and contained lymphocytes within and below the cuboidal endothelium. In the upper eyelid, CALT was morphologically similar to lymphoid tissue in the lower eyelid, but nodules were smaller and more random, lacked association with epithelial folds and fissures, and were clustered around the opening of the nasolacrimal duct. By PHW 12, CALT was characterized by basal germinal centers outlined by collagenous stroma, suprafollicular plasma cells, columnar epithelium with goblet cells, and fewer intraepithelial lymphocytes. On the basis of these features, CALT in chickens has morphologic characteristics similar to other components of the mucosal immune system and, therefore, may have a role in mucosal immunity.

Animals↗

A morphologic study of bronchus-associated lymphoid tissue in turkeys.

Bronchus-associated lymphoid tissue (BALT) in normal turkeys of ages 1 day and 1, 2, 3, 4, 8, and 18 weeks was examined by light microscopy and by scanning and transmission electron microscopy. Turkey BALT resembled other mucosa-associated lymphoid tissues; it was made up of a population of lymphocytes covered by a specialized epithelium different from typical pseudostratified ciliated columnar bronchial epithelium. There were distinct age-related differences in BALT structure. Bronchus-associated lymphoid nodules were larger and more numerous in older turkeys. In 1-day- to 2-week-old turkeys, the primary cell type of BALT epithelium was nonciliated cuboidal; in 2-week old turkeys it was squamous; and in turkeys older than 4-weeks of age, the epithelium was primarily ciliated columnar. In 1- to 4-week old turkeys, large numbers of intraepithelial lymphocytes disrupted the normal organization of the epithelium. In older turkeys, epithelial and lymphoid cells were in discrete compartments separated by connective tissue. Lymphocytes in 1-day-old turkeys were found in loose aggregates around venules and within the epithelium. In 1-week old turkeys, lymphocytes were organized into compartments of morphologically similar cells. By 3-weeks of age, lymphocytes were present in distinct germinal centers. Epithelial cells of BALT did not have large numbers of apical vesicles and thus were not structurally specialized for antigen uptake by endocytosis. However, the epithelial barrier appeared to be disrupted over lymphoid nodules, suggesting that antigen would be readily available to lymphocytes and phagocytes in BALT. Age-related differences in turkey BALT structure may have functional consequences with respect to the respiratory immune response.

Animals↗

The organization of lymphoid tissue in relation to function.

Organized lymphoid tissue is found in the thymus, spleen, lymph nodes; lining the respiratory and alimentary tracts; and also occurring at sites of chronic inflammation. Apart from the thymus which is involved in the regulation of T-cell function, the other tissues are organized into T-cell and B-cell areas. Lymphocytes in T-cell areas respond by proliferation in cell-mediated immunity and by the production of suppressor cells and helper for antibody formation. B-cell areas are involved in the humoral antibody response. B-cells are segregated into lymph follicles where they form germinal centers and are found at the corticomedullary junction where they differentiate into plasma cells. The role of lymph follicles in becoming germinal centers is poorly understood, but these areas are known to be the site of antigen trapping in primed animals. The particular function of the spleen as a localized area of lymphoid tissue along the course of the blood vascular system is discussed, particularly with respect to its ability to respond to soluble antigen released from sites of localized antigen deposition such as tumors.

Antibody Formation↗

Gut- and bronchus-associated lymphoid tissue.

Bronchus-associated and gut-associated lymphoid tissues (BALT and GALT) have both functional and morphologic similarities and are involved in seeding lung, gut, and other mucosal sites with predominantly IgA-containing B cells. Both types of lymphoid tissue are engaged in the regulation and the controlled amplification of immune responses, which vary from positive mucosal responses in both mucosae and peripheral tissues to local mucosal responses and systemic tolerance. Their further involvement in provision of cells destined to reside in the epithelial compartment of the body appears likely but requires further investigation. Their role in the provision of precursors of mucosal mast cells must also be explored further, but some participation in this event appears likely. The mucosa-associated lymphoid tissue (MALT) system appears to be integrated with the systemic immune system but may be considered as separate from it in several functional ways.

Animals↗

Immunohistochemistry of Nasopharyngeal (Waldeyer's ring equivalent) lymphoid tissue in the rat.

Previously we have described the presence of Waldeyer's ring equivalent (WRE) lymphoid tissue in the rat, and pointed out the importance of such an experimental model for studying the immunological role of nasopharyngeal lymphoid tissue. Here we extend this work with immunohistological data in terms of compartmentalization and distribution of the various lymphoid and non-lymphoid cells of this WRE lymphoid tissue in situ. WRE tissue consists of distinct T cell and B cell areas. B cell areas predominate; they are located directly under the mucosal epithelium and consist mainly of follicles. These follicles frequently contain a germinal center with IgD negative B cells interspersed with scattered CD4 (helper/inducer) T cells. Follicular dendritic cells are present in the germinal centers. T cell areas, on the other hand, are predominantly present at the abluminal side of the WRE in interfollicular areas. In these areas high endothelial venules and both CD4 and CD8 (suppressor/cytotoxic) T cell populations with a clear preponderance of CD4 over CD8 cells can be observed. MHC class II positive interdigitating dendritic cells are also scattered throughout these T cell areas. Mononuclear phagocytes (ED1-positive monocytes/macrophages) are scattered throughout the WRE, but especially in the T cell areas. A subpopulation of (ED3-positive) mononuclear phagocytes, e.g., the lymphoid tissue macrophage, is exclusively scattered between the small blood vessels along the abluminal side of the lymphoid tissue. Here, plasma cells, including those of the IgA type, are located. The data show that nasopharyngeal lymphoid tissue in the rat can be considered as an immunologically fully equipped and active mucosal lymphoid organ presumably executing similar immune functions as the tonsils in the human Waldeyer's ring.

Animals↗

Characteristics of submucosal lymphoid tissue located in the proximal colon of the rat.

In this study we have examined the morphology and steroid sensitivity of proximal colonic lymphoid tissue in the Fisher 344 rat. A time course study was conducted in which groups of animals were injected subcutaneously with hydrocortisone sodium succinate (125 mg/kg body weight) and killed on Days 0-4. Thymus, jejunal and ileal Peyer's patches and proximal colonic lymphoid tissue were excised, weighed and processed for histological analysis. The results showed that the maximum cytoreductive effects of the hydrocortisone were evident on Day 2. Thymus and proximal colonic lymphoid tissue weight decreased to 5 and 18% of the control values respectively, before returning towards control values over the next two days. In contrast, jejunal and ileal Peyer's patch weights were unaltered. A dose response experiment was conducted using the same endpoints. Rats were injected subcutaneously with hydrocortisone at 60, 120, 200 and 300 mg/kg body weight and killed on Day 2. The results of this experiment showed that the proximal colonic lymphoid tissue, like thymus, responded with a dose-dependent loss of tissue weight. The spleen and Peyer's patches showed only a slight weight decrease compared to the control. These data showed that the response of proximal colonic lymphoid tissue to steroids was more similar to that of thymus, a primary lymphoid tissue, than to other secondary lymphoid tissues. Finally, grafts of fetal proximal colon under the kidney capsule of syngeneic adults supported the development of this lymphoid aggregate in the absence of luminal antigenic stimulation. These results suggest that the development and functional contribution of proximal colonic lymphoid tissue to the immune system warrants a more detailed examination.

Animals↗