SELECTIVE-INHIBITION OF IMMATURE CD4(-) CD8(+) THYMOCYTE PROLIFERATION, BUT NOT DIFFERENTIATION, BY THE THYMUS ATROPHY-INDUCING COMPOUND DI-N-BUTYLTIN DICHLORIDE
IMMUNOLOGY
Authors: PIETERS, RHH; BOL, M; ARIENS, T; PUNT, P; SEINEN, W; BLOKSMA, N; PENNINKS, AH
Abstract
Effects of the thymus atrophy-inducing organotin compound di-n-butyltin dichloride (DBTC) on the differentiation and proliferation of immature rat thymocyte subsets were studied in vivo and in vitro. Incubation of freshly isolated CD4(-)CD8(-) or immature CD4(-)CD8(+) (characterized as CD4(-)CD53(-)) thymocytes with 10(-7) M DBTC for 18 hr did not affect cell recovery or their ability to differentiate to CD4(-)CD8(+) cells and CD4(+)CD8(+) or to CD4(+)CD8(+) cells, respectively. The same treatment decreased the spontaneous as well as the phytohaemagglutinin (PHA)-induced proliferation in both subsets. However, the inhibition of proliferation by DBTC of immature CD4(-)CD8(+), but not of CD4(-)CD8(-) thymocytes, appeared to increase with their growth rate. Data show that differentiation of immature thymocytes can proceed independently of proliferation and that DBTC causes thymus atrophy by selectively inhibiting the proliferation of immature CD4(-)CD8(+) thymocytes. Administration to rats of DBTC via the diet for 14 days resulted in an initial decrease of thymoblast number by day 2, followed by a decrease in the total number of thymocytes by day 4. Total thymocyte numbers were lowest on day 7 and did not significantly change thereafter. CD4/CD8 thymocyte subset distributions were similar to controls on day 4, but on day 7 of feeding a marked reduction of the percentage of CD4(+)CD8(+) thymocytes and consequently an increase of the percentages of the three other CD4/CD8 subsets were found. Thereafter, the CD4/CD8 subset distribution recovered, reaching near control values on day 14, despite the very low numbers of thymoblasts and of total thymocytes at that time. Data together indicate that DBTC reduces the production of CD4(+) CD8(+) and mature single-positive thymocytes by selectively inhibiting immature CD4(-)CD8(+) thymocyte proliferation but without affecting the differentiation capacity of these cells. This suggests that thymocyte proliferation and differentiation are seperately regulated processes.
Gene microarray identification of redox and mitochondrial elements that control resistance or sensitivity to apoptosis
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
Authors: Voehringer, DW; Hirschberg, DL; Xiao, J; Lu, Q; Roederer, M; Lock, CB; Herzenberg, LA; Steinman, L; Herzenberg, LA
Abstract
Multigenic programs controlling susceptibility to apoptosis in response to ionizing radiation have not yet been defined. Here, using DNA microarrays, we show gene expression patterns in an apoptosis-sensitive and apoptosis-resistant murine B cell lymphoma model system both before and after irradiation. From the 11,000 genes interrogated by the arrays, two major patterns emerged. First, before radiation exposure the radioresistant LYar cells expressed significantly greater levels of message for several genes involved in regulating intracellular redox potential. Compared with LYas cells, LYar cells express 20- to 50-fold more mRNA for the tetraspanin CD53 and for fructose-1.6-bisphosphatase. Expression of both of these genes can lead to the increase of total cellular glutathione, which is the principle intracellular antioxidant and has been shown to inhibit many forms of apoptosis, A second pattern emerged after radiation, when the apoptosis-sensitive LYas cells induced rapid expression of a unique cluster of genes characterized by their involvement in mitochondrial electron transport. Some of these genes have been previously recognized as proapoptotic; however others, such as uncoupling protein 2, were not previously known to be apoptotic regulatory proteins. From these observations we propose that a multigenic program for sensitivity to apoptosis involves induction of transcripts for genes participating in mitochondrial uncoupling and loss of membrane potential. This program triggers mitochondrial release of apoptogenic factors and induces the "caspase cascade." Conversely, cells resistant to apoptosis down-regulate these biochemical pathways, while activating pathways for establishment and maintenance of high intracellular redox potential by means of elevated glutathione.