Heat-induced gene expression as a novel targeted cancer gene therapy strategy

被引:0
|
作者
Huang, Q
Hu, JK
Lohr, F
Zhang, L
Braun, R
Lanzen, J
Little, JB
Dewhirst, MW
Li, CY
机构
[1] Duke Univ, Med Ctr, Dept Radiat Oncol, Durham, NC 27710 USA
[2] Harvard Univ, Sch Publ Hlth, Dept Canc Cell Biol, Boston, MA 02115 USA
关键词
D O I
暂无
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
One of the main advantages of gene therapy over traditional therapy is the potential to target the expression of therapeutic genes in desired cells or tissues. To achieve targeted gene expression, we experimented with a new approach based on the long-established phenomenon of the heat shock response, ny using the green fluorescence protein as a reporter gene, it was demonstrated that expression of a heterologous gene with a heat shock protein 70 promoter could be elevated to 500-1000-fold over background by moderate hyperthermia (39 degrees C to 43 degrees C) in tissue cultured cells. The heat-induced green fluorescence protein expression was first detectable at 3 h after heating and reached a maximum at 18-24 h. The expression dropped back to baseline within 72 h, In addition, when cells were infected with adenovirus vectors containing the heat-inducible interleukin 12 or tumor necrosis factor alpha genes and then heated (42 degrees C, 30 min), expression was at least 13,600- or 6.8 x 10(5)-fold over background, respectively. Intralesion injection of the interleukin-12-carrying adenovirus vector in a mouse melanoma tumor model caused significant tumor growth delay only with hyperthermia treatment. Our results therefore support heat-induced gene expression as a feasible approach for targeted cancer gene therapy.
引用
收藏
页码:3435 / 3439
页数:5
相关论文
共 50 条
  • [21] Targeted gene therapy for cancer.
    Vile, RG
    IMMUNOLOGY, 1996, 89 : SI115 - SI115
  • [22] Targeted gene therapy for ovarian cancer
    Rocconi, RP
    Numnum, TM
    Stoff-Khalili, M
    Makhija, S
    Alvarez, RD
    Curiel, DT
    CURRENT GENE THERAPY, 2005, 5 (06) : 643 - 653
  • [23] Heat-responsive gene expression for gene therapy
    Walther, Wolfgang
    Stein, Ulrike
    ADVANCED DRUG DELIVERY REVIEWS, 2009, 61 (7-8) : 641 - 649
  • [24] Effect of Colorectal Cancer Gene Mutations on Mitomycin Dose and Heat-Induced Augmentation of Cytotoxicity
    Morano, W. F.
    Kabagwira, J.
    Choi, A. H.
    Reeves, M. E.
    Selleck, M. J.
    Senthil, M.
    Wall, N. R.
    ANNALS OF SURGICAL ONCOLOGY, 2021, 28 (SUPPL 1) : S32 - S32
  • [25] Targeted cancer gene therapy with a novel activity of tumor tissue penetration
    Yun, Chae-Ok
    JOURNAL OF GENE MEDICINE, 2008, 10 (04): : 436 - 436
  • [26] Targeted Gene Therapy for Tobacco Carcinogen-Induced Lung Cancer
    Gankhuyag, Nomundelger
    Cho, Chong-Su
    JOURNAL OF THORACIC ONCOLOGY, 2017, 12 (01) : S434 - S435
  • [27] Gene expression-targeted isoflavone therapy
    Wegrzyn, Alicja
    IUBMB LIFE, 2012, 64 (04) : 307 - 315
  • [28] Chromatin-associated YTHDC1 coordinates heat-induced reprogramming of gene expression
    Timcheva, Kalina
    Dufour, Solenne
    Touat-Todeschini, Leila
    Burnard, Callum
    Carpentier, Marie-Christine
    Chuffart, Florent
    Merret, Remy
    Helsmoortel, Marion
    Ferre, Sabrina
    Grezy, Aude
    Coute, Yohann
    Rousseaux, Sophie
    Khochbin, Saadi
    Vourc'h, Claire
    Bousquet-Antonelli, Cecile
    Kiernan, Rosemary
    Seigneurin-Berny, Daphne
    Verdel, Andre
    CELL REPORTS, 2022, 41 (11):
  • [29] Cancer gene therapy with a heat shock protein gene
    Lukacs, KV
    Steel, RM
    Oakley, RE
    Pardo, OE
    Porter, CD
    Sorgi, F
    Huang, L
    Geddes, DM
    Alton, EWFW
    CANCER GENE THERAPY, 1997, 4 (06) : O133 - O133
  • [30] Cancer gene therapy with a heat shock protein gene
    Lukacs, KV
    Pardo, OE
    Steel, RM
    Oakley, RE
    Geddes, DM
    Alton, EWFW
    CANCER GENE THERAPY, 1997, 4 (05) : 310 - 310