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Yizhou Zou

Publications and source records attributed to Yizhou Zou.

7 recordsLinked to original sources

MICA allele-level typing by sequence-based typing with computerized assignment of polymorphic sites and short tandem repeats within the transmembrane region.

MICA genes are located close to, but are structurally distinct from, HLA class I genes and have been found to be associated with some diseases and with immune responses to transplants. We have developed a MICA typing method based on polymerase chain reaction (PCR)/sequence-based typing and a computer program that determines the polymorphisms and distinguishes the GCT repeats in exon 5. One PCR amplification was performed to obtain templates of 2.2 kb including exons 2, 3, 4, and 5 of MICA to be sequenced with two forward and two reverse primers. Overlay of nucleotide sequencing signals resulting from presence of different GCT repeats in exon 5 antisense from two different MICA alleles can be identified by a computer-based analysis of the combined signal string containing the 35 bases. Eighteen reference samples from the 10th International Histocompatibility Workshop with known MICA alleles, as more recently determined, were tested and the concordance was 100% with the previous typing. In addition, 46 samples from kidney or heart transplant recipients and donors were analyzed for their MICA typing by this approach. Results demonstrated that the majority of samples were MICA heterozygous. The most common allele was MICA*00801/A5.1 (44.7%), which was consistent with previous reports. Three samples manifested ambiguous results, either because of polymorphism in exon 6 which was not tested or because the combination of two alleles gives the same pattern as the other two. The procedure was relatively simple and fast and is presently our method of choice for high-resolution clinical MICA typing.

Alleles↗

Detection of anti-MICA antibodies in patients awaiting kidney transplantation, during the post-transplant course, and in eluates from rejected kidney allografts by Luminex flow cytometry.

Previously we have reported on the development of antibodies against MICA alleles in kidney transplant recipients. These alloantibodies have now been determined using a new assay using Luminex beads bound to soluble recombinant MICA antigens produced in insect cells. In the present study we have analyzed sera from 85 kidney transplant recipients on the waiting list and 66 patients transplanted within the last 4 years and 59 acid eluates obtained from allograft nephrectomy specimens. Many of the patients in those groups were sensitized and some had previous transplants (waiting list: 15%; post-tx: 7.6%; eluates 22%) and their sera were found to contain anti-human leukocyte antigen (HLA) and anti-MICA antibodies. Anti-MICA antibodies were detected in 21/85 (24.7%) of the waiting list patients and in 15/66 (22.7%) of the transplanted recipients; 11 of the eluates (18.6%) were found to have MICA-specific antibodies (6 of them also had anti-HLA antibodies and 5 did not). These data suggested that immunization against mismatched MICA alleles induces development of anti-MICA antibodies. The finding of MICA allele-specific antibodies in eluates of kidney transplants suggests that anti-MICA antibodies can be involved in the pathogenesis of kidney allograft rejection. Further studies will be required to determine whether patients who produce alloantibodies against MICA alleles are at risk for transplant rejection even when no HLA antibodies are detected.

Adult↗

Contact inhibition causes strong downregulation of expression of MICA in human fibroblasts and decreased NK cell killing.

The polymorphic MICA gene encodes glycoproteins that activate T cells and NK cells through the NKG2D receptor and may costimulate immune functions. We found that MICA was expressed on freshly isolated human fibroblasts and was markedly decreased when fibroblasts were grown to confluency in culture dishes. MICA surface protein was measured by flow cytometry with the MICA-specific monoclonal antibody (mAb) 6B3, and HLA class I-specific protein was determined with mAb w6/32. In these experiments, after culture for 120 hours, the staining for MICA in fibroblasts decreased to about 20% of the initial amount and MICA mRNA fell in parallel, while HLA class I staining was maintained or even became somewhat stronger. In other experiments, MICA expression was not decreased when fibroblast contact was prevented by the addition of 1 muM Rottlerin, a specific inhibitor of protein kinase C delta known to prevent contact inhibition of fibroblasts. In the NK cell cytotoxicity assay, blocking MICA by antibody or downregulation by cell contact resulted in a decrease of specific killing by 30%. Increased MICA expression during proliferation of fibroblasts may support the host response to injury.

Acetophenones↗

Effect of human cytomegalovirus on expression of MHC class I-related chains A.

The MHC-encoded MHC class I-related chains A (MICA) glycoproteins are known to enhance the functions of NK and T cells by ligating the stimulating receptor NKG2D and appear to play an important role in host defense. Human CMV (HCMV) evades the immune response in many different ways, but has not previously been found to down-regulate MICA. We have found that a common form of MICA, which has a nucleotide insertion in exon 5 corresponding to the transmembrane region and no cytoplasmic tail, was increased on the surface of fibroblasts HFS-13 compared with the mock-infected sample of the same cells that had been cultured to confluence. However, an astrocytoma cell line, U373, which has a full-length variant of MICA, showed that the expression of MICA was decreased after HCMV infection. Retroviral transduction of different MICA alleles into fibroblasts HFF-D, which express no MICA of their own, established that full-length MICA was down-regulated by HCMV, and the truncated form was not. Fibroblasts with decreased MICA due to HCMV infection were found to be protected from NK cell killing, whereas in the presence of the truncated form of MICA, the virus-infected cells were destroyed. Thus, the truncated form of MICA, which is the most common, has a mutation that allows it to persist on the surface and hinder efforts of the virus to evade the immune response.

Astrocytoma↗

Alternatively spliced forms of MICA and MICB lacking exon 3 in a human cell line and evidence of presence of similar RNA in human peripheral blood mononuclear cells.

MICA and MICB genes encode MHC class I chain-related proteins, which are polymorphic, do not appear to present peptides or associate with beta(2)-microglobulin, and are expressed predominantly in epithelial cells, endothelial cells, fibroblasts and several cultured cell lines. Alternatively spliced isoforms are known to exist for HLA-A and B, as well as HLA-G and the MHC class I-related gene, MR1. In the course of cloning MICA and MICB cDNA from the colon carcinoma cell line HCT 116, it was observed that two kinds of cDNAs were obtained: a 1161-bp cDNA, representing full-length MICA or MICB, and a shorter variant of 873 bp. The sequences of these short cDNAs were those of the correct MICA or MICB alleles but lacking exon 3. They were found in 7 of 72 clones examined or about 10% and were called MICA2 and MICB2. MICA1 and MICA2 were transfected into Chinese hamster ovary cells and found to be expressed both in the cells and on their surface. PCR with a primer based on a sequence formed by the joining of exons 2 and 4 allowed detection of the isoform RNA in different cells including freshly prepared normal PBMC.

Alternative Splicing↗

MICA polymorphism in South American Indians.

We have studied the MICA alleles of 196 unrelated subjects from three South American Indian tribes (Toba, Wichi and Terena). They are members of isolated tribes located in the Gran Chaco area in northeastern Argentina and in Mato Grosso do Sul in South Central Brazil. Of 55 previously known alleles, nine were observed in South American Indians, compared with 16 that were found in North American Caucasians, suggesting a more restricted allelic distribution of MICA in these tribes. In South American Indians, MICA*00201 was the most frequent allele, with a gene frequency of 33% in Toba, 47% in Wichi and 44% in Terena. MICA*00201, MICA*027 (external domain sequence like MICA*008/TM allele A5) and MICA*010 accounted for more than 90% of all the MICA genes in South American Indians. In North American Caucasians, MICA*00801 (*008/A5.1) accounted for 42% of the genes and was the most common allele. We observed a high degree of linkage disequilibrium between certain alleles of MICA and of HLA-B in the South American Indian populations. Phylogenetic trees constructed using gene frequencies of the transmembrane short tandem repeats in the populations reported here, and in other populations taken from published reports, suggest that South American Indians are more closely related to Asians than to Europeans.

Adult↗

MICA is a target for complement-dependent cytotoxicity with mouse monoclonal antibodies and human alloantibodies.

The highly polymorphic major histocompatibility class I related chain A (MICA) gene encodes glycoproteins that have been shown to be expressed in epithelial cells, endothelial cells, keratinocytes, monocytes, and tumor cells. In previous experiments, we have studied MICA antigens using rabbit sera obtained by immunization with MICA peptides. We also found that several transplant recipients had specific antibodies against MICA in an ELISA assay with recombinant of MICA (r-MICA). In the present work we produced monoclonal antibodies by immunization of mice with recombinant MICA*008. Based on the different patterns of reactivity observed in ELISA, Western blot, and flow cytometry, mAbs 1.9C2, 2.4F5, 1.7AD, and 2.3D4 only reacted with denatured MICA and mAb 1.7A8 and 3.2H3 reacted also with native MICA as illustrated by flow cytometry with live cells. These monoclonal antibodies were postulated to bind to different sites of the MICA molecule. In order to investigate whether MICA expressed on the cell surface is able to mediate cell killing, antibody absorption, flow cytometry and complement-dependent cytotoxicity (CDC) were performed. We found that mouse monoclonal antibody 3.2H3 was able to kill 70% of HeLa cells. Absorption of a patient serum with pooled human platelets to remove antibodies against class I HLA resulted in a small shift of fluorescence and reduced killing from 100% to 70-75%. Absorption with the platelets and r-MICA produced a remarkable reduction in fluorescence staining and virtually reduced complement-dependent killing to the level of the negative controls. The results suggested that MICA alloantigens may be more immunogenic than could have been previously suspected.

Animals↗