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本文引用的文献

1
Duck antibody responses to keyhole limpet haemocyanin, human immunoglobulin G and the trinitrophenyl hapten. Evidence of affinity maturation.鸭对血蓝蛋白、人免疫球蛋白 G 和三硝基苯半抗原的抗体反应。亲和力成熟的证据。
Avian Pathol. 2001 Aug;30(4):381-90. doi: 10.1080/03079450120066386.
2
Duck immunoglobulins: structure, functions and molecular genetics.鸭免疫球蛋白:结构、功能与分子遗传学
Avian Pathol. 1993 Jun;22(2):211-36. doi: 10.1080/03079459308418916.
3
Sequence and comparative analysis of the chicken genome provide unique perspectives on vertebrate evolution.鸡基因组的序列和比较分析为脊椎动物进化提供了独特的视角。
Nature. 2004 Dec 9;432(7018):695-716. doi: 10.1038/nature03154.
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Construction and characterization of a fosmid library for comparative analysis of the duck genome.用于鸭基因组比较分析的fosmid文库的构建与表征
Anim Genet. 2004 Oct;35(5):417-8. doi: 10.1111/j.1365-2052.2004.01177.x.
5
The dominant MHC class I gene is adjacent to the polymorphic TAP2 gene in the duck, Anas platyrhynchos.在绿头鸭(Anas platyrhynchos)中,主要的MHC I类基因与多态性TAP2基因相邻。
Immunogenetics. 2004 Jun;56(3):192-203. doi: 10.1007/s00251-004-0672-3. Epub 2004 May 27.
6
The ratio of full length IgY to truncated IgY in immune complexes affects macrophage phagocytosis and the acute phase response of mallard ducks (Anas platyrhynchos).免疫复合物中全长IgY与截短型IgY的比例影响绿头鸭(Anas platyrhynchos)的巨噬细胞吞噬作用和急性期反应。
Dev Comp Immunol. 2004 Jun;28(7-8):665-72. doi: 10.1016/j.dci.2003.11.003.
7
Identification of antigenic regions of duck hepatitis B virus core protein with antibodies elicited by DNA immunization and chronic infection.通过DNA免疫和慢性感染引发的抗体鉴定鸭乙型肝炎病毒核心蛋白的抗原区域
J Virol. 2004 Feb;78(4):1945-53. doi: 10.1128/jvi.78.4.1945-1953.2004.
8
The immunoglobulin heavy chain locus of the duck. Genomic organization and expression of D, J, and C region genes.鸭免疫球蛋白重链基因座。D、J和C区基因的基因组组织与表达
J Biol Chem. 2001 Dec 14;276(50):46729-36. doi: 10.1074/jbc.M106221200. Epub 2001 Oct 9.
9
Calibration of avian molecular clocks.鸟类分子钟的校准。
Mol Biol Evol. 2001 Feb;18(2):206-13. doi: 10.1093/oxfordjournals.molbev.a003794.
10
Mapping of the chicken immunoglobulin heavy-chain constant region gene locus reveals an inverted alpha gene upstream of a condensed upsilon gene.鸡免疫球蛋白重链恒定区基因座的图谱显示,在紧密排列的 υ 基因上游存在一个反向的 α 基因。
Immunology. 2000 Nov;101(3):348-53. doi: 10.1046/j.1365-2567.2000.00106.x.

非鸡形目鸟类的免疫球蛋白:鸭的抗体表达与库

Immunoglobulins of the non-galliform birds: antibody expression and repertoire in the duck.

作者信息

Lundqvist Mats L, Middleton Darlene L, Radford Cynthia, Warr Gregory W, Magor Katharine E

机构信息

Marine Biomedicine and Environmental Sciences Center and Department of Biochemistry, Medical University of South Carolina, Charleston, SC, USA.

出版信息

Dev Comp Immunol. 2006;30(1-2):93-100. doi: 10.1016/j.dci.2005.06.019.

DOI:10.1016/j.dci.2005.06.019
PMID:16150486
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1317265/
Abstract

Galliform and non-galliform birds express three immunoglobulin isotypes, IgM, IgA and IgY. Beyond this we should not generalize because differences in gene organization may have functional consequences reflected in the immune response. At present, studies on non-galliform birds are largely restricted to ducks. Ducks express an alternatively spliced form of their IgY heavy chain (upsilon) gene, the IgY(DeltaFc), that lacks the Fc region and Fc-associated secondary effector functions. It is not known how common the expression of the IgY(DeltaFc) is among birds, nor the functional consequences. It is also not known whether the unusual organization of the duck IgH locus, also shared with the chicken, having the gene order of mu, alpha and upsilon, with alpha inverted in the locus, is unique to the galloanseriform lineage. Ducks, like chickens, have a single immunoglobulin light chain of the lambda (lambda) type. Evidence suggests that ducks, like chickens, generate their immunoglobulin repertoire through a single functional rearrangement of the variable (V) region, and generate diversity through gene conversion from a pool of pseudogenes. In Southern blots of germline and rearranged bursal DNA, both the heavy and light chain loci of ducks appear to each undergo one major rearrangement event. For both heavy and light chains, the functional V region element and the pseudogenes appear to consist of a single gene family. Further analysis of 26 heavy chain joining (JH) and 27 light chain JL segments shows there is use of a single J segment in ducks, which is diversified presumably through somatic mutations and gene conversion events. Despite this limitation on the rearrangement of immunoglobulin genes, analysis of 26 DH and 122 VL sequences suggests that extensive sequence diversity is generated.

摘要

鸡形目和非鸡形目鸟类表达三种免疫球蛋白同种型,即IgM、IgA和IgY。除此之外,我们不应一概而论,因为基因组织的差异可能会在免疫反应中产生功能性后果。目前,对非鸡形目鸟类的研究主要局限于鸭。鸭表达其IgY重链(upsilon)基因的一种可变剪接形式,即IgY(DeltaFc),该形式缺乏Fc区域和与Fc相关的二级效应功能。尚不清楚IgY(DeltaFc)在鸟类中的表达有多普遍,也不清楚其功能后果。同样未知的是,鸭IgH基因座的异常组织(鸡也有),其基因顺序为mu、alpha和upsilon,其中alpha在基因座中是倒置的,是否为鸡雁形目谱系所特有。鸭和鸡一样,有一条单一的lambda(lambda)型免疫球蛋白轻链。有证据表明,鸭和鸡一样,通过可变(V)区域的单一功能性重排来产生其免疫球蛋白库,并通过假基因库中的基因转换来产生多样性。在种系和重排的法氏囊DNA的Southern印迹中,鸭的重链和轻链基因座似乎各自经历一次主要的重排事件。对于重链和轻链,功能性V区域元件和假基因似乎都由一个单一的基因家族组成。对26个重链连接(JH)和27个轻链JL片段的进一步分析表明,鸭中使用了单个J片段,其可能通过体细胞突变和基因转换事件而多样化。尽管免疫球蛋白基因重排存在这种限制,但对26个DH和122个VL序列的分析表明产生了广泛的序列多样性。