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Functions of the growth arrest specific 1 gene in the development of the mouse embryo
1Department of Anatomy, The Chinese University of Hong Kong, Hong Kong, Shatin, People's Republic of China. kaholee@cuhk.edu.hk
Abstract:
The growth arrest specific 1 (gas1) gene is highly expressed in quiescent mammalian cells (Schneider et al., 1988, Cell 54, 787-793). Overexpression of gas1 in normal and some cancer cell lines could inhibit G(0)/G(1) transition. Presently, we have examined the functions of this gene in the developing mouse embryo. The spatial-temporal expression patterns for gas1 were established in 8.5- to 14.5-day-old embryos by immunohistochemical staining and in situ hybridization. Gas1 was found heterogeneously expressed in most organ systems including the brain, heart, kidney, limb, lung, and gonad. The antiproliferative effects of gas1 on 10.5 and 12.5 day limb cells were investigated by flow cytometry. In 10.5 day limbs cells, gas1 overexpression could not prevent G(0)/G(1) progression. It was determined that gas1 could only induce growth arrest if p53 was also coexpressed. In contrast, gas1 overexpression alone was able to induce growth arrest in 12.5 day limb cells. We also examined the cell cycle profile of gas1-expressing and nonexpressing cells by immunochemistry and flow cytometry. For 10.5 day Gas1-expressing heart and limb cells, we did not find these cells preferentially distributed at G0/G1, as compared with Gas1-negative cells. However, in the 12.5 day heart and limb, we did find significantly more Gas1-expressing cells distributed at G0/G1 phase than Gas1-negative cells. These results implied that Gas1 alone, during the early stages of development, could not inhibit cell growth. This inhibition was only established when the embryo grew older. We have overexpressed gas1 in subconfluent embryonic limb cells to determine the ability of gas1 to cross-talk with various response elements of important transduction pathways. Specifically, we have examined the interaction of gas1 with Ap-1, NFkappaB, and c-myc responsive elements tagged with a SEAP reporter. In 10.5 day limb cells, gas1 overexpression had little effect on Ap-1, NFkappaB, and c-myc activities. In contrast, gas1 overexpression in 12.5 day limb cells enhanced AP-1 response while it inhibited NFkappaB and c-myc activities. These responses were directly associated with the ability of gas1 to induce growth arrest in embryonic limb cells. In the 12.5 day hindlimb, gas1 was found strongly expressed in the interdigital tissues. We overexpressed gas1 in these tissues and discovered that it promoted interdigital cell death. Our in situ hybridization studies of limb sections and micromass cultures revealed that, during the early stages of chondrogenesis, only cells surrounding the chondrogenic condensations expressed gas1. The gene was only expressed by chondrocytes after the cartilage started to differentiate. To understand the function of gas1 in chondrogenesis, we overexpressed the gene in limb micromass cultures. It was found that cells overexpressing gas1/GFP could not participate in cartilage formation, unlike cells that just express the GFP reporter. We speculated that the reason gas1 was expressed outside the chondrogenic nodules was to restrict cells from being recruited into the nodules and thereby defining the boundary between chondrogenic and nonchondrogenic forming regions.
Insights
Growth arrest specific 1 (gas1) gene inhibits embryonic cell proliferation with age. Gas1 induces growth arrest in older embryos, impacting chondrogenesis and promoting cell death.
Area of Science:
- Developmental Biology
- Cell Cycle Regulation
- Gene Function Studies
Background:
- The growth arrest specific 1 (gas1) gene is known for its role in cell cycle arrest in quiescent mammalian cells.
- Its antiproliferative effects have been observed in normal and cancer cell lines, inhibiting the G(0)/G(1) transition.
Purpose of the Study:
- To investigate the spatial-temporal expression patterns and functional roles of the gas1 gene during mouse embryonic development.
- To determine the impact of gas1 overexpression on cell proliferation, cell cycle progression, and specific developmental processes like chondrogenesis and interdigital cell death.
Main Methods:
- Immunohistochemical staining and in situ hybridization to map gas1 expression in mouse embryos (8.5-14.5 days post-coitum).
- Flow cytometry and immunochemistry to analyze cell cycle profiles and antiproliferative effects of gas1 in embryonic limb cells.
- Overexpression studies in limb cells and micromass cultures to assess gas1's interaction with signaling pathways (Ap-1, NFkappaB, c-myc) and its role in chondrogenesis.
Main Results:
- Gas1 was heterogeneously expressed across multiple organ systems in developing mouse embryos.
- Gas1 overexpression alone induced growth arrest in 12.5-day-old limb cells but not in 10.5-day-old cells, where p53 coexpression was required.
- Gas1 influenced signaling pathways (enhancing AP-1, inhibiting NFkappaB and c-myc) in older embryos and promoted interdigital cell death.
- Gas1 overexpression inhibited chondrogenesis by preventing cell recruitment into cartilage-forming nodules.
Conclusions:
- Gas1's ability to inhibit embryonic cell growth is age-dependent, becoming more potent in later developmental stages.
- Gas1 plays a significant role in regulating cell proliferation, differentiation, and programmed cell death during mouse embryogenesis.
- Gas1 acts as a boundary-defining factor in chondrogenesis, restricting cell participation in cartilage formation.