Trimerization profile of type IV collagen COL4A5 exon deletion in X-linked Alport syndrome

被引:0
|
作者
Koyama, Yuimi [1 ]
Suico, Mary Ann [1 ,2 ]
Owaki, Aimi [1 ]
Sato, Ryoichi [1 ]
Kuwazuru, Jun [1 ]
Kaseda, Shota [1 ]
Sannomiya, Yuya [1 ]
Horizono, Jun [1 ]
Omachi, Kohei [1 ]
Horinouchi, Tomoko [3 ]
Yamamura, Tomohiko [3 ]
Tsuhako, Haruki [1 ]
Nozu, Kandai [3 ]
Shuto, Tsuyoshi [1 ,2 ]
Kai, Hirofumi [1 ,2 ]
机构
[1] Kumamoto Univ, Grad Sch Pharmaceut Sci, Dept Mol Med, 5-1 Oe honmachi,Chuo Ku, Kumamoto 8620973, Japan
[2] Kumamoto Univ, Fac Life Sci, Global Ctr Nat Resources Sci, Kumamoto, Japan
[3] Kobe Univ, Grad Sch Med, Dept Pediat, Kobe, Japan
基金
日本学术振兴会;
关键词
Alport syndrome; Exon-skipping; Type IV collagen; Nonsense mutation; alpha 345(IV) trimer; GENOTYPE-PHENOTYPE CORRELATION; MUTATIONS; GENE;
D O I
10.1007/s10157-024-02503-9
中图分类号
R5 [内科学]; R69 [泌尿科学(泌尿生殖系疾病)];
学科分类号
1002 ; 100201 ;
摘要
Background Alport syndrome (AS) is a genetic kidney disease caused by a mutation in type IV collagen alpha 3, alpha 4, and alpha 5, which are normally secreted as heterotrimer alpha 345(IV). Nonsense mutation in these genes causes severe AS phenotype. We previously revealed that the exon-skipping approach to remove a nonsense mutation in alpha 5(IV) ameliorated the AS pathology. However, the effect of removing an exon on trimerization is unknown. Here, we assessed the impact of exon deletion on trimerization to evaluate their possible therapeutic applicability and to predict the severity of mutations associated with exon-skipping. Methods We produced exon deletion constructs (Delta Exon), nonsense, and missense mutants by mutagenesis and evaluated their trimer formation and secretion activities using a nanoluciferase-based assay that we previously developed. Results Exon-skipping had differential effects on the trimer secretion of alpha 345(IV). Some Delta Exons could form and secrete alpha 345(IV) trimers and had higher activity compared with nonsense mutants. Other Delta Exons had low secretion activity, especially for those with exon deletion near the C-terminal end although the intracellular trimerization was normal. No difference was noted in the secretion of missense mutants and their Delta Exon counterpart. Conclusion Exon skipping is advantageous for nonsense mutants in AS with severe phenotypes and early onset of renal failure but applications may be limited to Delta Exons capable of normal trimerization and secretion. This study provides information on alpha 5(IV) exon-skipping for possible therapeutic application and the prediction of the trimer behavior associated with exon-skipping in Alport syndrome.
引用
收藏
页码:874 / 881
页数:8
相关论文
共 50 条
  • [21] A family case of X-linked Alport syndrome patients with a novel variant in COL4A5
    Kashiwagi, Yasuyo
    Suzuki, Shinji
    Agata, Kazushi
    Morishima, Yasuyuki
    Inagaki, Natsuko
    Numabe, Hironao
    Kawashima, Hisashi
    CEN CASE REPORTS, 2019, 8 (02) : 75 - 78
  • [22] X-linked Alport syndrome in Hellenic families: Phenotypic heterogeneity and mutations near interruptions of the collagen domain in COL4A5
    Demosthenous, P.
    Voskarides, K.
    Stylianou, K.
    Hadjigavriel, M.
    Arsali, M.
    Patsias, C.
    Georgaki, E.
    Zirogiannis, P.
    Stavrou, C.
    Daphnis, E.
    Pierides, A.
    Deltas, C.
    CLINICAL GENETICS, 2012, 81 (03) : 240 - 248
  • [23] A COL4A5 Missense Variant in a Han-Chinese Family with X-linked Alport Syndrome
    Wu, Yuan
    Guo, Yi
    Yuan, Jinzhong
    Xu, Hongbo
    Chen, Yong
    Zhang, Hao
    Yuan, Mingyang
    Deng, Hao
    Yuan, Lamei
    CURRENT MOLECULAR MEDICINE, 2019, 19 (10) : 758 - 765
  • [24] A novel COL4A5 splicing variant causing X-linked Alport syndrome: A case report
    Naonori Kumagai
    Yuji Matsumoto
    Tomomi Kondoh
    Yohei Ikezumi
    Human Genome Variation, 9
  • [25] Preimplantation genetic testing for X-linked alport syndrome caused by variation in the COL4A5 gene
    Liu, Nengqing
    Wen, Xiaojun
    Ou, Zhanhui
    Fang, Xiaowu
    Du, Jing
    Lin, Xiufeng
    FRONTIERS IN PEDIATRICS, 2023, 11
  • [26] A novel COL4A5 splicing variant causing X-linked Alport syndrome: A case report
    Kumagai, Naonori
    Matsumoto, Yuji
    Kondoh, Tomomi
    Ikezumi, Yohei
    HUMAN GENOME VARIATION, 2022, 9 (01)
  • [27] MLPA and cDNA analysis improves COL4A5 mutation detection in X-linked Alport syndrome
    Hertz, J. M.
    Juncker, I.
    Marcussen, N.
    CLINICAL GENETICS, 2008, 74 (06) : 522 - 530
  • [28] Novel Digenic Variants in COL4A4 and COL4A5 Causing X-Linked Alport Syndrome: A Case Report
    Uedono, Hideki
    Mori, Katsuhito
    Nakatani, Shinya
    Watanabe, Kohei
    Nakaya, Rino
    Morioka, Fumiyuki
    Sone, Kazuma
    Ono, Chie
    Hotta, Junko
    Tsuda, Akihiro
    Morisada, Naoya
    Seto, Toshiyuki
    Nozu, Kandai
    Emoto, Masanori
    CASE REPORTS IN NEPHROLOGY AND DIALYSIS, 2024, 14 (01): : 1 - 9
  • [29] Establishment of X-linked Alport syndrome model mice with a Col4a5 R471X mutation
    Hashikami, Kentarou
    Asahina, Makoto
    Nozu, Kandai
    Iijima, Kazumoto
    Nagata, Michio
    Takeyama, Michiyasu
    BIOCHEMISTRY AND BIOPHYSICS REPORTS, 2019, 17 : 81 - 86
  • [30] Pathogenic evaluation of synonymous COL4A5 variants in X-linked Alport syndrome using a minigene assay
    Horinouchi, Tomoko
    Yamamura, Tomohiko
    Minamikawa, Shogo
    Nagano, China
    Sakakibara, Nana
    Nakanishi, Koichi
    Shima, Yuko
    Morisada, Naoya
    Ishiko, Shinya
    Aoto, Yuya
    Nagase, Hiroaki
    Takeda, Hiroki
    Rossanti, Rini
    Ishimori, Shingo
    Kaito, Hiroshi
    Matsuo, Masafumi
    Iijima, Kazumoto
    Nozu, Kandai
    MOLECULAR GENETICS & GENOMIC MEDICINE, 2020, 8 (08):