Literature DB >> 2460896

Two distinct modes of hyperthermic cell death.

C A Vidair1, W C Dewey.   

Abstract

Plateau-phase Chinese hamster ovary cells sterilized by heat died one of two distinct modes of death. A "rapid" mode, which predominated during the first few days postheating, was characterized by cell detachment and inhibited rates of protein, RNA, and DNA synthesis. A "slow" mode of death became evident after the cells had fully recovered from the heat-induced inhibition of macromolecular synthesis and cell detachment had ceased. These populations had reduced plating efficiencies relative to nonheated populations and contained a large fraction of cells with multiple nuclei. The multinucleated cells did not form colonies, but heated populations also contained increased numbers of uninucleated cells which were nonclonogenic. As the heat dose was increased and the surviving fraction decreased, the rapid mode of death predominated. These data show that heat damage is expressed in two distinct ways. This might result from the existence of two separate targets for heat killing, or a single target which manifests its effects in different ways as the damage it sustains increases.

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Year:  1988        PMID: 2460896

Source DB:  PubMed          Journal:  Radiat Res        ISSN: 0033-7587            Impact factor:   2.841


  10 in total

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2.  Mapping of hyperthermic tumor cell death in a microchannel under unidirectional heating.

Authors:  Fen Wang; Yuhui Li; Lei Chen; Dandan Chen; Xiaolei Wu; Hao Wang
Journal:  Biomicrofluidics       Date:  2012-03-20       Impact factor: 2.800

3.  Two different pathways for necrotic cell death induced by free radicals.

Authors:  W Malorni; S Paradisi; F Iosi; M T Santini
Journal:  Cell Biol Toxicol       Date:  1993 Apr-Jun       Impact factor: 6.691

4.  Heat stress induced cell death mechanisms in hepatocytes and hepatocellular carcinoma: in vitro and in vivo study.

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6.  A genomics approach to identify susceptibilities of breast cancer cells to "fever-range" hyperthermia.

Authors:  Clarissa Amaya; Vittal Kurisetty; Jessica Stiles; Alice M Nyakeriga; Arunkumar Arumugam; Rajkumar Lakshmanaswamy; Cristian E Botez; Dianne C Mitchell; Brad A Bryan
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7.  Hyperthermia versus Oncothermia: Cellular Effects in Complementary Cancer Therapy.

Authors:  Gabriella Hegyi; Gyula P Szigeti; András Szász
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Review 8.  Effects of hyperthermia on DNA repair pathways: one treatment to inhibit them all.

Authors:  Arlene L Oei; Lianne E M Vriend; Johannes Crezee; Nicolaas A P Franken; Przemek M Krawczyk
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Authors:  Jung-Tak Jang; Jin Wook Jeoung; Joo Hyun Park; Won June Lee; Yu Jeong Kim; Jiyun Seon; Minkyu Kim; Jooyoung Lee; Sun Ha Paek; Ki Ho Park; Seongtae Bae
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Review 10.  Magnetic Hyperthermia and Radiation Therapy: Radiobiological Principles and Current Practice .

Authors:  Spiridon V Spirou; Martina Basini; Alessandro Lascialfari; Claudio Sangregorio; Claudia Innocenti
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  10 in total

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