Cryoablation: physical and molecular basis with putative immunological consequences

被引:39
作者
Baust, John G. [1 ]
Snyder, Kristi K. [2 ]
Santucci, Kimberly L. [2 ]
Robilotto, Anthony T. [2 ]
Van Buskirk, Robert G. [1 ,2 ]
Baust, John M. [2 ]
机构
[1] SUNY Binghamton, Binghamton, NY 13902 USA
[2] CPSI Biotech, Owego, NY USA
关键词
Cryoablation; cryotherapy; thermal therapy; cryo-immunology; adjuvants; cancer; freezing; CRYO-IMMUNOLOGY; BREAST-CANCER; CELL-DEATH; IN-VITRO; PROSTATE; CRYOSURGERY; CHEMOTHERAPY; MECHANISMS; ABLATION; COMBINATION;
D O I
10.1080/02656736.2019.1647355
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Cryoablation (CA) is unique as the singular energy deprivation therapy that impacts all cellular processes. CA is independent of cell cycle stage and degree of cellular stemness. Importantly, CA is typically applied as a non-repetitive (single session) treatment that does not support adaptative mutagenesis as do many repetitive therapies. CA is characterized by the launch of multiple forms of cell death including (a) ice-related physical damage, (b) initiation of cellular stress responses (kill switch activation) and launch of necrosis and apoptosis, (c) vascular stasis, and (d) likely activation of ablative immune responses. CA is not without limitation related to the thermal gradient formed between cryoprobe surface (similar to-185 degrees C) and the distal surface of the freeze zone (similar to 0 degrees C) requiring freeze margin extension beyond the tumor boundary (up to similar to 1 cm). This limitation is mitigated in part by commonly applied dual freeze thaw cycles and the use of freeze sensitizing adjuvants. This review will (1) identify the cascade of damaging effects of the freeze-thaw process, its physical and molecular-based relationships, (2) a likely immunological involvement (abscopic effect), and (3) explore the use of freeze-sensitizing adjuvants necessary to limit freezing beyond the tumor margin.
引用
收藏
页码:10 / 16
页数:7
相关论文
共 56 条
  • [1] Best Practice Statement on Cryosurgery for the Treatment of Localized Prostate Cancer
    Babaian, Richard J.
    Donnelly, Bryan
    Bahn, Duke
    Baust, John G.
    Dineen, Martin
    Ellis, David
    Katz, Aaron
    Pisters, Louis
    Rukstalis, Daniel
    Shinohara, Katsuto
    Thrasher, J. Brantley
    [J]. JOURNAL OF UROLOGY, 2008, 180 (05) : 1993 - 2004
  • [2] Profiling of residual breast cancers after neoadjuvant chemotherapy identifies DUSP4 deficiency as a mechanism of drug resistance
    Balko, Justin M.
    Cook, Rebecca S.
    Vaught, David B.
    Kuba, Maria G.
    Miller, Todd W.
    Bhola, Neil E.
    Sanders, Melinda E.
    Granja-Ingram, Nara M.
    Smith, J. Joshua
    Meszoely, Ingrid M.
    Salter, Janine
    Dowsett, Mitch
    Stemke-Hale, Katherine
    Gonzalez-Angulo, Ana M.
    Mills, Gordon B.
    Pinto, Joseph A.
    Gomez, Henry L.
    Arteaga, Carlos L.
    [J]. NATURE MEDICINE, 2012, 18 (07) : 1052 - +
  • [3] Characterization of Pancreatic Cancer Cell Thermal Response to Heat Ablation or Cryoablation
    Baumann, Kenneth W.
    Baust, John M.
    Snyder, Kristi K.
    Baust, John G.
    Van Buskirk, Robert G.
    [J]. TECHNOLOGY IN CANCER RESEARCH & TREATMENT, 2017, 16 (04) : 393 - 405
  • [4] Issues critical to the successful application of cryosurgical ablation of the prostate
    Baust, J. G.
    Gage, A. A.
    Klossner, D.
    Clarke, D.
    Miller, R.
    Cohen, J.
    Katz, A.
    Polascik, T.
    Clarke, H.
    Baust, J. M.
    [J]. TECHNOLOGY IN CANCER RESEARCH & TREATMENT, 2007, 6 (02) : 97 - 109
  • [5] Re-purposing cryoablation: a combinatorial 'therapy' for the destruction of tissue
    Baust, J. G.
    Bischof, J. C.
    Jiang-Hughes, S.
    Polascik, T. J.
    Rukstalis, D. B.
    Gage, A. A.
    Baust, J. M.
    [J]. PROSTATE CANCER AND PROSTATIC DISEASES, 2015, 18 (02) : 87 - 95
  • [6] Mechanisms of cryoablation: Clinical consequences on malignant tumors
    Baust, J. G.
    Gage, A. A.
    Johansen, T. E. Bjerklund
    Bauste, J. M.
    [J]. CRYOBIOLOGY, 2014, 68 (01) : 1 - 11
  • [7] Baust J.M., 2014, CRYOBIOLOGY, V69, P198
  • [8] The pathophysiology of thermoablation: optimizing cryoablation
    Baust, John G.
    Gage, Andrew A.
    Robilottto, Anthony T.
    Baust, John M.
    [J]. CURRENT OPINION IN UROLOGY, 2009, 19 (02) : 127 - 132
  • [9] Vitamin D3 cryosensitization increases prostate cancer susceptibility to cryoablation via mitochondrial-mediated apoptosis and necrosis
    Baust, John M.
    Klossner, Daniel P.
    Robilotto, Anthony
    VanBuskirk, Robert G.
    Gage, Andrew A.
    Mouraviev, Vladimir
    Polascik, Thomas J.
    Baust, John G.
    [J]. BJU INTERNATIONAL, 2012, 109 (06) : 949 - 958
  • [10] 1,25(OH)2D3 attenuates TGF-β1/β2-induced increased migration and invasion via inhibiting epithelial-mesenchymal transition in colon cancer cells
    Chen, Shanwen
    Zhu, Jing
    Zuo, Shuai
    Ma, Ju
    Zhang, Junling
    Chen, Guowei
    Wang, Xin
    Pan, Yisheng
    Liu, Yucun
    Wang, Pengyuan
    [J]. BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2015, 468 (1-2) : 130 - 135