Palindromic but not G-rich sequences are targets of class switch recombination

被引:67
作者
Tashiro, J [1 ]
Kinoshita, K [1 ]
Honjo, T [1 ]
机构
[1] Kyoto Univ, Grad Sch Med, Sakyo Ku, Kyoto 6068501, Japan
关键词
artificial switch constructs; B lymphoma cells; breakpoint sequence; S sequence; secondary structure;
D O I
10.1093/intimm/13.4.495
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
In order to understand the specificity of sequences or structures recognized by a recombinase involved in class switch recombination (CSR), we examined the relative CSR efficiency of various switch sequences in artificial CSR constructs that undergo CSR in CH12F3-2 murine B lymphoma line. Since CSR recombination is not specific to switch regions of different isotypes or orientation of S sequences, we examined the efficiency of S sequences of non-mammalian species and artificial sequences which lack several characters of mammal switch sequences: chicken S-mu, Xenopus S-mu telomere, multiple cloning site (MCS) and unrelated negative control sequence. CSR occurred in chicken S-mu and MCS with significantly higher efficiency than the negative control. A common character of these two sequences is that they are rich in palindrome and stem-loop structures. However, telomeres, which are G-rich and repetitive but not palindromic, could not serve as switch sequences at all. The AT-rich Xenopus S-mu sequence was inefficient but capable of CSR. CSR breakpoint distribution suggests that the cleavage may take place preferentially in the proximity of the junctions (neck) between the loop and stem in the secondary structure of the single-stranded S sequence, which can be formed by palindromic sequences. The results suggest that the secondary structure of S-region sequences which is transiently formed during transcription may be necessary for recognition by class switch recombinase.
引用
收藏
页码:495 / 505
页数:11
相关论文
共 43 条
  • [21] Microsites for immunoglobulin switch recombination breakpoints from Xenopus to mammals
    Mussmann, R
    Courtet, M
    Schwager, J
    DuPasquier, L
    [J]. EUROPEAN JOURNAL OF IMMUNOLOGY, 1997, 27 (10) : 2610 - 2619
  • [22] High frequency class switching of an IgM(+) B lymphoma clone CH12F3 to IgA(+) cells
    Nakamura, M
    Kondo, S
    Sugai, M
    Nazarea, M
    Imamura, S
    Honjo, T
    [J]. INTERNATIONAL IMMUNOLOGY, 1996, 8 (02) : 193 - 201
  • [23] SWITCH REGION OF IMMUNOGLOBULIN C-MU-GENE IS COMPOSED OF SIMPLE TANDEM REPETITIVE SEQUENCES
    NIKAIDO, T
    NAKAI, S
    HONJO, T
    [J]. NATURE, 1981, 292 (5826) : 845 - 848
  • [24] Developmentally regulated expression of the PD-1 protein on the surface of double-negative (CD4(-)CD8(-)) thymocytes
    Nishimura, H
    Agata, Y
    Kawasaki, A
    Sato, M
    Imamura, S
    Minato, N
    Yagita, H
    Nakano, T
    Honjo, T
    [J]. INTERNATIONAL IMMUNOLOGY, 1996, 8 (05) : 773 - 780
  • [25] V(D)J recombination: on the cutting edge
    Oettinger, MA
    [J]. CURRENT OPINION IN CELL BIOLOGY, 1999, 11 (03) : 325 - 329
  • [26] Cell-cycle-regulated DNA double-strand breaks in somatic hypermutation of immunoglobulin genes
    Papavasiliou, FN
    Schatz, DG
    [J]. NATURE, 2000, 408 (6809) : 216 - 221
  • [27] BCL-6 mutations in normal germinal center B cells:: Evidence of somatic hypermutation acting outside Ig loci
    Pasqualucci, L
    Migliazza, A
    Fracchiolla, N
    William, C
    Neri, A
    Baldini, L
    Chaganti, RSK
    Klein, U
    Küppers, R
    Rajewsky, K
    Dalla-Favera, R
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (20) : 11816 - 11821
  • [28] Somatic hypermutation of immunoglobulin genes is linked to transcription initiation
    Peters, A
    Storb, U
    [J]. IMMUNITY, 1996, 4 (01) : 57 - 65
  • [29] Activation-induced cytidine deaminase (AID) deficiency causes the autosomal recessive form of the hyper-IgM syndrome (HIGM2)
    Revy, P
    Muto, T
    Levy, Y
    Geissmann, F
    Plebani, A
    Sanal, O
    Catalan, N
    Forveille, M
    Dufourcq-Lagelouse, R
    Gennery, A
    Tezcan, I
    Ersoy, F
    Kayserili, H
    Ugazio, AG
    Brousse, N
    Muramatsu, M
    Notarangelo, LD
    Kinoshita, K
    Honjo, T
    Fischer, A
    Durandy, A
    [J]. CELL, 2000, 102 (05) : 565 - 575
  • [30] Secondary structure for the apolipoprotein B mRNA editing site - AU-binding proteins interact with a stem loop
    Richardson, N
    Navaratnam, N
    Scott, J
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 1998, 273 (48) : 31707 - 31717