Groups of mice have been autopsied at regular intervals during the period of lymphomyeloid tissue regeneration which follows the phase of hypocellularity induced by the i.v. injection of 100 mug (4 mg/kg bodyweight) nitrogen mustard. The marrow cellularity recovered to levels in the normal range by the 8th day and remained in this range up to the 40th day. Subsequently, the marrow showed a slight degree of hypocellularity up to day 120. Granulocytes were predominant during the initial phase of marrow regeneration during the second week post-injection. The thymus exhibited periodic size variations such that it was substantially larger than the thymus of age-matched controls from 20-30 d, 46-73 d, and 75-100 d after injection. The lymph nodes and lymphoid tissue of the spleen regenerated only slowly to reach control values by 40-50 d. Superimposed on the recovering lymphoid tissue of the spleen was a phase of erythroid hyperplasia lasting from 10-18 d post-injection. This coincided with a shift from granulocytosis to erythroid hyperplasia in the marrow. This erythroid hyperplasia lasted until day 30 when the cellular composition of the marrow and spleen returned to normal. A possible explanation of these results is that nitrogen mustard introduces a degree of synchrony into stem cell proliferation and differentiation. Additionally, these results emphasize the role of the haematopoietic microenvironment in the control of stem cell differentiation.
The accumulation of p53 protein following whole body irradiation of adult mice was studied using a new polyclonal antibody to mouse p53. While dramatic accumulation of the protein was apparent in splenocytes, thymocytes and osteocytes no p53 protein accumulation was detected in the hepatocytes of the irradiated mouse. Thus the upstream initiating signals that control the induction of p53 are controlled in a tissue specific manner. While massive apoptosis accompanies p53 induction in thymocytes and splenocytes it is not seen in the osteocytes. Thus the downstream consequences of p53 induction are also tightly controlled. These results have profound significance for an understanding of the role of the p53 tumour suppression pathway in different tissues.
Haematopoietic stem cells in murine fetal liver are in a proliferative state unlike those in normal bone marrow which are quiescent. A regulatory activity is produced by cells in the fetal liver which will switch quiescent normal bone marrow haematopoietic stem cells into cell cycle in vitro. This regulator from Day 15 fetal liver cells is produced by adherent cells and by cells fractionated on a Percoll gradient in the 1.064 and 1.076 g per cm3 density bands but not in the 1.123 g per cm3 band. Colony-stimulating factor cannot be detected in the supernatants containing the stem cell regulatory activity. The stimulator can be detected in supernatants produced from cell suspensions of liver cells at Day 15 and Day 17 of gestation and 24 hours and 72 hours after birth. However by 1 week after birth the production of the stimulator decreases and is undetectable 3 and 10 weeks after birth. The total numbers of haematopoietic stem cells (CFU-S) in fetal liver decrease from Day 15 of gestation and only small numbers are present 1 week after birth. Thus the decline in the production of haematopoietic stem cell proliferation stimulator correlates with the decrease in haematopoietic stem cell numbers in the liver through gestation and after birth.
The rate of cell production of a mammary adenocarcinoma following surgical biopsy has been investigated using vincristine sulphate as a metaphase arrest agent. Small implants of the tumour were implanted into the inguinal region of young mice of both sexes and were seen to have a constant rate of cell production both between different tumour generations and during tumour growth. Such a constant rate of tumour cell production provides an extremely useful model for exploring the effects of surgical biopsy. Measurement of the cell production rate showed a 60 per cent decrease for the first 48 hours following biopsy after which recovery ensued to reach control levels again. Sham-anaesthetized controls and sham-resected controls demonstrated none of these changes. Similar depression in the rate of cell production was seen following biopsy of one tumour in mice bearing bilateral tumours. The 48-hour depression was observed both in the ipsilateral remnant tumour and in the contralateral implant which has not been biopsied.
Two hundred and seventy-five male CBA/Birmingham mice including 84 mice over 80 wk of age were autopsied at intervals over the whole range of their natural life span of about 2 1/2 yr. Body weight increased progressively up to 30 wk of age when a plateau value of 30-40 g was attained. Subsequent to 80 wk a slight, progressive decrease was observed. The thymus showed a profound increase in size from about 5 mg at birth to approximately 60 mg by the 3rd wk. Thereafter, the weight of the thymus decreased, rapidly at first, to reach 20-30 mg by 15 wk of age. The thymus weight then decreased more slowly to around 10 mg by the 80th wk. The spleen weight reached a plateau value of 50-60 mg by 4 wk and this was maintained until the 80th wk. In mice older than 80 wk varying degrees of splenomegaly were observed. Histologically, the areas of white pulp in these spleens were very prominent, suggestive of an on-going immune response. It was possible to associate this splenomegaly with the appearance of gross and microscopic evidence of hepatomas. No hepatomas were observed prior to 80 wk, but between 80 and 120 wk the incidence increased progressively; and all the mice whose age at autopsy exceeded 120 wk had hepatomas. Histologically the hepatomas showed marked nuclear plemorphism with occasional mitotic figures. Thrombi, areas of avascular necrosis and collections of inflammatory cells were observed. The tumour metastasised to the lung in 12% of cases. The doubling time of the hepatoma in situ was estimated as 1-6 wk (range 1-3-1-8 wk). These hepatomas were transplantable and grew with a doubling of 2-25 wk in syngeneic adult recipients. To test if the more rapid progressive growth of the tumour in situ in old CBA mice might have resulted from a breakdown in "immunological surveillance" the same tumour was transplanted simultaneously to a group of young and old recipients. The tumour grew more slowly (doubling time, 2-5 wk) in the old recipients. This result would not appear to support the hypothesis of a prolonged breakdown of immunological surveillance as the cause of the progressive increase in the incidence and growth of these tumours in situ in old mice.
The effects of a lethal dose of 750 rad of whole-body x irradiation on the murine lymphomyeloid complex have been investigated. During the first 4 days after exposure there was a marked decrease in the weight of the thymus, spleen, and lymph nodes and in the cellularity of the femoral bone marrow. Subsequently, a phase of thymic regeneration, maximal on the tenth day, was observed in the absence of detectable regeneration elsewhere in the lymphomyeloid complex. The thymus, from the third to the fifth days postirradiation, although very hypocellular, was a site of extensive tritiated thymidine incorporation indicating the presence of a precursor cell population undertaking DNA synthesis. No comparable changes in the tritiated thymidine incorporation of the spleen, lymph nodes or bone marrow were observed. Thymic regeneration in the absence of detectable regeneration elsewhere in the lymphomyeloid complex occurred over a range of doses within the lethal range in several strains of mice. (auth)