Literature DB >> 8426110

Downregulation of the antigen presenting cell function(s) of pulmonary dendritic cells in vivo by resident alveolar macrophages.

P G Holt1, J Oliver, N Bilyk, C McMenamin, P G McMenamin, G Kraal, T Thepen.   

Abstract

Class II major histocompatibility complex (Ia)-bearing dendritic cells (DC) from airway epithelium and lung parenchyma express low-moderate antigen presenting cell (APC) activity when freshly isolated. However, this function is markedly upregulated during overnight culture in a manner analogous to epidermal Langerhans cells. The in vitro "maturation" process is inhibited by coculture with pulmonary alveolar macrophages (PAM) across a semipermeable membrane, and the degree of inhibition achieved can be markedly increased by the presence of tumor necrosis factor alpha. In addition, PAM-mediated suppression of DC function is abrogated via inhibition of the nitric oxide synthetase pathway. Functional maturation of the DC is accompanied by increased expression of surface Ia, which is also inhibited in the presence of PAM. Prior elimination of PAM from DC donors via intratracheal administration of the cytotoxic drug dichloromethylene diphosphonate in liposomes, 24-72 h before lung DC preparation, achieves a comparable upregulation of APC activity, suggesting that (consistent with the in vitro data) the resident PAM population actively suppresses the APC function of lung DC in situ. In support of the feasibility of such a regulatory mechanism, electron microscopic examination of normal lung fixed by intravascular perfusion in the inflated state (which optimally preserves PAM in situ), revealed that the majority are preferentially localized in recesses at the alveolar septal junctions. In this position, the PAM are in intimate association with the alveolar epithelial surface, and are effectively separated by as little as 0.2 microns from underlying interstitial spaces which contain the peripheral lung DC population. A similar juxtaposition of airway intraepithelial DC is demonstrated with underlying submucosal tissue macrophages, where the separation between the two cell populations is effectively the width of the basal lamina.

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Year:  1993        PMID: 8426110      PMCID: PMC2190916          DOI: 10.1084/jem.177.2.397

Source DB:  PubMed          Journal:  J Exp Med        ISSN: 0022-1007            Impact factor:   14.307


  43 in total

1.  Zonal distribution of alveolar macrophages, type II pneumonocytes, and alveolar septal connective tissue gaps in adult human lungs.

Authors:  S C Parra; R Burnette; H P Price; T Takaro
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3.  T cell activation by antigen-presenting cells from lung tissue digests: suppression by endogenous macrophages.

Authors:  P G Holt; A Degebrodt; C O'Leary; K Krska; T Plozza
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Review 4.  Dendritic cells: features and functions.

Authors:  R M Steinman; M C Nussenzweig
Journal:  Immunol Rev       Date:  1980       Impact factor: 12.988

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Authors:  D W Mason; R P Arthur; M J Dallman; J R Green; G P Spickett; M L Thomas
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7.  Airway macrophages. The importance of the fixation method.

Authors:  J D Brain; P Gehr; R I Kavet
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Authors:  H E Farrell; P G Holt; G R Shellam
Journal:  Int Arch Allergy Appl Immunol       Date:  1985

9.  The rat mixed lymphocyte reaction: roles of a dendritic cell in intestinal lymph and T-cell subsets defined by monoclonal antibodies.

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Authors:  K Sertl; T Takemura; E Tschachler; V J Ferrans; M A Kaliner; E M Shevach
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