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D Kamel

Publications and source records attributed to D Kamel.

At least 19 recordsLinked to original sources

DNA copy number changes in Schistosoma-associated and non-Schistosoma-associated bladder cancer.

DNA copy number changes were investigated in 69 samples of schistosoma-associated (SA) and non-schistosoma-associated (NSA) squamous cell carcinoma (SCC) and transitional cell carcinoma (TCC) of the bladder by comparative genomic hybridization (CGH). DNA copy number changes were detected in 47 tumors. SA tumors had more changes than NSA tumors (mean, 7 vs. 4), whereas the number of changes in SCC and TCC tumors was similar. SA tumors displayed more gains than losses (1.7:1), whereas NSA tumors showed an equal number of gains and losses. Changes that were observed at similar frequencies in SCC and TCC, irrespective of the schistosomal status, included gains and high-level amplifications at 1q, 8q, and 20q and losses in 9p and 13q. These changes may be involved in a common pathway for bladder tumor development and progression independent of schistosomal status or histological subtype. Losses in 3p and gains at 5p were seen only in SCC (P < 0.01) and losses in 5q were more frequent in SA-SCC than in other tumors (P < 0.05). However, changes that were more frequent in TCC than those in SCC included gains at 17q (P < 0.01) and losses in 4q (P < 0.05) and 6q (P < 0.01). Gains and high-level amplifications at 5p were seen only in SA-SCC (P < 0. 01), whereas gains and high-level amplifications with minimal common overlapping regions at 11q13 were more frequently seen both in SA-SCC and SA-TCC tumors (P < 0.01). In addition to the above mentioned alterations, several other changes were also seen at lower frequencies. The variations in the DNA copy number changes observed in TCC, SCC, SA, and NSA bladder carcinomas suggest that these tumors have different genetic pathways.

Aged↗

Role of deoxyribonucleic acid polymerase epsilon in spermatogenesis in mice.

Previous studies on DNA polymerase epsilon indicate that this enzyme is involved in replication of chromosomal DNA. In this study, we examined the expression of DNA polymerases alpha, delta, and epsilon during mouse testis development and germ cell differentiation. The steady-state levels of mRNAs encoding DNA polymerase epsilon and the recombination enzyme Rad51 remained constant during testis development, whereas the mRNA levels of DNA polymerases alpha and delta declined from birth until sexual maturity. Immunohistochemical staining methods, using a stage-specific model of the seminiferous epithelium, revealed dramatic differences between DNA polymerase alpha and epsilon distribution. As expected, DNA polymerase alpha and proliferating cell nuclear antigen showed relatively strong immunostaining in mitotically proliferating spermatogonia and even stronger staining in preleptotene cells undergoing meiotic DNA replication. The distribution of Rad51 was similar, but there was a dramatic peak in late pachytene cells. In contrast, DNA polymerase epsilon was detectable in mitotically proliferating spermatogonia but not in the early stages of meiotic prophase. However, DNA polymerase epsilon reappeared in late pachytene cells and remained through the two meiotic divisions, and was present in haploid spermatids up to the stage at which the flagellum starts developing. Overall, the results suggest that DNA polymerase epsilon functions in mitotic replication, in the completion of recombination in late pachytene cells, and in repair of DNA damage in round spermatids. In contrast, DNA polymerases alpha and delta appear to be involved in meiotic DNA synthesis, which occurs early in meiotic prophase, in addition to functioning in DNA replication in proliferating spermatogonia.

Animals↗

Presence of human papillomavirus DNA and abnormal p53 protein accumulation in lung carcinoma.

BACKGROUND: In some carcinomas inactivation of the tumour suppressor gene product p53, either by point mutation or indirectly by the human papillomavirus (HPV), has been suggested as two alternative routes to malignant transformation. To test this hypothesis in lung tumours, 43 lung carcinomas were analysed by in situ hybridisation and polymerase chain reaction (PCR) for the presence of HPV DNA, and the results were compared with p53 protein immunohistochemical analysis. METHODS: The presence of HPV DNA in lung carcinoma was detected by nucleic acid in situ hybridisation for HPV types 6, 11, 16, 18, 31, and 33 using nonradioactively labelled DNA probes. Polymerase chain reaction (PCR) analysis was performed on all cases showing positive HPV DNA labelling by in situ hybridisation and in an additional 13 negative cases. Abnormal nuclear accumulation of the p53 protein was revealed by immunohistochemistry using the avidin-biotin-peroxidase complex method and a CM-1 polyclonal anti-human p53 antibody and a monoclonal mutation-specific Pab 240 p53 antibody. RESULTS: HPV DNA was found by in situ hybridisation in 13 lung carcinomas (30%). In all these cases subtype-specific HPV DNA could also be detected by PCR. Abnormal p53 protein accumulation was seen in 21 of the 43 carcinomas (49%), of which 18 were HPV negative. Twelve (57%) of the CM-1 positive cases were also positive for the mutation-specific antibody Pab 240. There was an obvious inverse relationship between the presence of papilloma viral DNA and abnormal p53 protein accumulation. CONCLUSIONS: p53 plays an important part in the development of lung carcinomas and, in some cases, HPV may contribute to it by binding and inactivating the p53 protein.

Adenocarcinoma↗

p53 protein accumulation and the presence of human papillomavirus DNA in bronchiolo-alveolar carcinoma correlate with poor prognosis.

Accumulation of the tumour suppressor gene p53 product due to a gene mutation is frequently seen in human carcinomas, including lung carcinoma. Another indirect mechanism involving p53 in malignant growth relates to the E6 protein of the human papillomavirus (HPV), which is able to bind and degrade wild-type p53 protein, thus eliminating its tumour suppressor activities. Bronchiolo-alveolar carcinoma (BAC) is a rare type of lung carcinoma. The aim of our study was to examine the occurrence of p53 accumulation and the presence of HPV DNA in BAC. Sections of 22 BACs were immunohistochemically stained using a p53 antibody, CM-1. The presence of HPV DNA in BACs was verified by in situ hybridisation for HPV types 6, 11, 16, 18, 31 and 33 and confirmed by PCR. Thirty-six percent of the tumours showed abnormal p53 nuclear accumulation, and HPV DNA, revealed by in situ hybridisation, was found in 36%. Unexpectedly, only 13% of the type 1 BACs were positive for p53, whereas 45% of the type 2 BACs were positive. During a follow-up of 12-176 months, only 10% of the patients with BACs negative for both p53 and HPV died of the disease, compared with 42% of the patients with either p53 or HPV positivity. No inverse relationship between abnormal p53 protein accumulation and the presence of HPV DNA was found.

Adenocarcinoma, Bronchiolo-Alveolar↗

Human papillomavirus DNA and abnormal p53 expression in carcinoma of the urinary bladder.

In this study we analysed 47 bladder carcinomas for the presence of DNA-HPV subtypes 6, 11, 16, 18, 31 and 33 by nucleic acid in situ hybridization, and for the abnormal accumulation of p53 protein by immunohistochemistry. HPV DNA was found in 27/47 (57%) bladder carcinomas, with multiple subtypes in 20 cases. In squamous cell carcinoma (SCC), HPV DNA was only detected in the superficial layer of the neoplastic epithelium and was found mainly in the nuclear compartment. In contrast, in transitional cell carcinoma (TCC), HPV DNA was also found in deeper parts of the tumour. In about half the cases it was mainly found in the cytoplasmic compartment. In SCC, the HPV DNA labelling occurred in koilocytic cells, while no such association was found in TCC. Abnormal accumulation of p53 protein was found in 24/47 (51%) carcinomas. p53 positivity was found significantly more often in SCC than in TCC (p = 0.05). Concurrent HPV positivity and abnormal p53 protein accumulation was found in 18 cases, 14 showing the presence of HPV subtypes 16 and/or 18 DNA. The results demonstrate that HPV DNA occurs widely in urinary tract tumours. Unlike in some other carcinomas, there was no inverse relationship between HPV positivity and abnormal p53 protein accumulation in bladder carcinomas. Thus HPV infection may play a role in the pathogenesis of bladder carcinomas by some mechanism other than inactivation of the p53 protein.

Aged↗

p53 and c-erbB-2 expression in schistosomal urinary bladder carcinomas and schistosomal cystitis with premalignant lesions.

Immunoreactivity for p53 and c-erbB-2 proteins was studied in 31 schistosomal urinary bladder carcinomas and 21 cases of schistosomal cystitis with hyperplastic, metaplastic and/or dysplastic (premalignant) lesions. The results were compared with 30 carcinomas and 21 premalignant lesions of the urinary bladder without schistosomiasis. Abnormal nuclear p53 protein accumulation was found in 17/31 schistosomal and in 15/30 non-schistosomal carcinomas and in 8/21 schistosomal cystitis with premalignant lesions of which five showed hyperplasia. No case of non-schistosomal hyperplasia or squamous metaplasia examined showed p53-positivity. In non-schistosomal carcinomas p53 positivity was significantly associated with tumour grade (grade I-II vs grade III tumours: P = 0.021) and greater age (P = 0.004) while in schistosomal carcinomas no such associations were found. Cytoplasmic membrane-bound positivity for c-erbB-2 oncoprotein was found in comparable percentages in schistosomal and non-schistosomal bladder carcinomas (10%), and in both groups was co-expressed with p53. p53 gene alteration is an important event in the development of both schistosomal and non-schistosomal bladder carcinoma.

Adolescent↗

Aberrant accumulation of p53 associates with Ki67 and mitotic count in benign skin lesions.

Sixty-two skin samples from patients with a variety of benign disorders (20 cases of psoriasis, 14 cases of chronic dermatitis, 11 seborrhoeic keratoses, 11 cases of lichen planus), and seven normal skin samples, were stained immunohistochemically with a polyclonal antibody (CM-1) to p53, and a monoclonal antibody to Ki67, using the avidin-biotin complex method. p53-positive keratinocytes could be found in most of these lesions. The percentage of p53-positive cells was, however, far lower than usually seen in p53-positive malignant tumours. No p53 reactivity was observed in the normal skin samples. Variable Ki67 reactivity was observed in all skin samples. Overall, the number of Ki67-positive cells was higher in skin samples in which the proportion of p53-positive cells was high (> 0.5% of total epidermal cell population) (P = 0.004). This also applied separately to psoriatic and non-psoriatic lesions (P = 0.028 and P = 0.033, respectively). In cases with > 10% of Ki67-positive cells, there were significantly more mitoses (P < 0.001). This association applied to both psoriasis and the other lesions studied (P = 0.024 and P < 0.001, respectively). The results show that immunohistochemically detectable accumulation of p53 is a frequent finding in non-neoplastic skin lesions. As p53 positivity was associated with the proliferation marker Ki67, the accumulation of p53 is possibly a response to an increased proliferation rate of the keratinocytes in these skin diseases, or alternatively it may be associated with apoptosis.

Betamethasone↗

Proliferating cell nuclear antigen but not p53 or human papillomavirus DNA correlates with advanced clinical stage in renal cell carcinoma.

In this study we investigated 56 renal cell carcinomas immunohistochemically for the expression of proliferating cell nuclear antigen (PCNA) and tumour suppressor protein p53. We also analyzed for the presence of human papilloma virus (HPV) DNA subtypes 6, 11, 16, 18, 31 and 33 by in situ hybridization. In carcinomas which showed more than 10% of PCNA positive nuclei there were significantly more cases with invasion (P = 0.032) or metastatic disease (P = 0.047). Nine out of 22 grade III-IV tumours (40.9%) but only six out of 30 grade I-II tumours (20%) showed more than 10% of PCNA positive cells (P = 0.097). Patients with 10% or more PCNA positive cells in kidney tumours had more advanced disease at the time of diagnosis than those showing less PCNA positive cells (P = 0.05). Six p53 positive cases were found among 56 tumours (11%), but only one case had more than 10% positive cell nuclei. The presence of HPV DNA was found in 29 out of 56 cases (52%). Multiple subtypes were found in 19 cases (34%). The most commonly occurring subtypes were 18 and 33. There was no association between PCNA, p53 and the presence of HPV DNA subtypes. Because of the association of PCNA with invasion and metastatic disease, it would be worth while to study PCNA further as a possible marker for aggressiveness of renal carcinomas. Both this study and those concentrated on mutational analysis suggest that p53 is generally not important for the development of renal cell carcinoma. On the other hand, the presence of HPV DNA in these tumours implicates HPV viral infection in the aetiology of renal cancer.

Adult↗

p53 immunohistochemical positivity as a prognostic marker in intracranial tumours.

The frequency and scale of positive p53 immunohistochemistry in 107 intracranial tumours of different types was studied as a possible prognostic marker using a polyclonal antibody CM-1 which detects both the wild-type and mutated p53 proteins. Fifty of the tumours (46.7%) showed nuclear p53 positivity with different percentages of positive nuclei. The positivity was concentrated in glial tumours of which 52.8% were positive. Forty-two of seventy-four astrocytomas (56.8%), 4 of 12 oligodendrogliomas (33.3%), and 1 of 3 ependymomas (33.3%) showed p53-positive nuclei. Cytoplasmic positivity, found in 25 astrocytomas, was always associated with nuclear positivity. Some p53-positive nuclei were seen in 16.7% of the non-gliomatous tumours, but in all cases p53 positivity was seen in less than 1% of the nuclei. The patients with astrocytomas containing more than 5% p53-positive nuclei were younger (mean 27.3 years) (p = 0.016) and their tumours larger in diameter (mean 4.4 cm) (p = 0.05) than those with p53-negative astrocytomas (mean 41.0 years and mean 3.3 cm, respectively). In p53-positive (> or = 1% of nuclei) grade IV astrocytomas, survival time was significantly shorter (mean 7.2 months) than in p53-negative grade IV astrocytomas (mean 15.5 months (p = 0.024). The results indicate frequent p53 expression in intracranial tumours, especially in gliomas. The association of p53 positivity with young age, larger tumour size, and poor prognosis in high-grade astrocytomas suggests that p53 may be involved in the development of more aggressive types of intracranial tumours. According to these results, p53 immunohistochemical positivity may serve as a prognostic marker in high-grade astrocytomas.

Adult↗

p53 protein accumulation in lung carcinomas of patients exposed to asbestos and tobacco smoke.

Primary lung carcinomas often carry mutations in the p53 tumor suppressor gene. Most of these mutations alter the conformation of the p53 protein into a more stable phenotype that makes it immunohistochemically detectable. Asbestos is a carcinogen that can cause deletions in chromosomes and possibly also gene mutations. In this study we examined 70 primary lung carcinomas for p53 protein accumulation using a polyclonal antihuman p53 antibody, CM-1. Patients were interviewed about their occupational and smoking history and classified according to their anamnestical asbestos exposure. Presence of asbestos bodies (AB) was evaluated from histologic samples of peripheral nontumorous lung tissue using both 5-microns-thick sections stained with Perls' iron and 30-microns-thick unstained sections. Abnormal accumulation of p53 protein was found in 36 tumors (51%), more often in patients exposed to asbestos than in patients without exposure (67% versus 40%, p = 0.027). Significant association was also noticed between the accumulation of p53 and the asbestos content of lung tissue: 35% of the p53-positive patients had more than one AB/cm2 compared with 14% of p53-negative cases (p = 0.046). Patients with strongly p53-positive tumors were heavier smokers (57.2 +/- 38.2 pack-years) than patients with p53-negative or lightly positive tumors (38.9 +/- 19.9 pack-years) (p = 0.017). Our findings indicate that both asbestos exposure and heavy smoking can cause abnormal p53 protein accumulation suggestive of mutated p53.

Aged↗

Application of fine-needle aspiration to the demonstration of ERBB2 and MYC expression by in situ hybridization in breast carcinoma.

Thirteen consecutive fine-needle aspirates of breast carcinoma and five selected breast tumor cell lines were analyzed for ERBB2 and MYC mRNA expression by in situ hybridization. To compare the level of mRNA synthesis with those of gene amplification and oncoprotein synthesis, all tumors were also analyzed by Southern blot analysis, and for ERBB2 also by immunohistochemistry. Expression of ERBB2 mRNA was observed in eight tumors. MYC expression was observed in all tumors studied. Three tumor cell lines expressed both ERBB2 and MYC (SK-BR-3, HeLa, HT-29) and two only MYC (SK-LU-1, HL-60). Only one tumor showed amplification of ERBB2 and two of MYC. In all three cases there was a considerable increase in corresponding mRNA synthesis as detected by in situ hybridization. By immunohistochemistry, four cases showed either patchy areas or uniformly distributed, membrane-bound ERBB2 immunoreactivity. All except one case showed increased ERBB2 mRNA synthesis. There was a clear association between the quantity of ERBB2 mRNA and oncoprotein expression. The results show that in situ hybridization of fine-needle aspiration material is a sensitive method to detect increased expression of the ERBB2 and MYC oncogenes in breast carcinoma. Furthermore, this study indicates that in a majority of cases some other mechanism that gene amplification appears responsible for the increased gene expression. It is also possible that Southern blot analysis is not a sensitive enough method to detect gene amplifications in the heterogeneous breast tumors, which usually also contain stromal tissue. The fact that not all cases with elevated ERBB2 mRNA synthesis were immunohistochemically positive suggests that either immunohistochemistry (after fixation with 10% formalin) is a less sensitive method than in situ hybridization to detect abnormal gene expression or that there are cases in which the oncoprotein synthesis is for some reason depressed, even though there is an increase in gene transcription.

Adult↗

p53 and c-erbB-2 protein expression in adenocarcinomas and epithelial dysplasias of the gall bladder.

In this study we investigated immunohistochemically the expression of p53 and c-erbB-2 proteins in 30 gall bladder adenocarcinomas, one carcinoma in situ, eight gall bladder epithelial dysplasias, and four cases of chronic cholecystitis. p53 expression could be found in 14 (47 per cent) adenocarcinomas and in two out of eight epithelial dysplasias. There were significantly more p53-positive grade II-III tumours than grade I tumours (P = 0.032 according to Fisher's exact probability test). c-erbB-2 expression was found in three (10 per cent) adenocarcinomas, but all dysplasias were c-erbB-2-negative. All three c-erbB-2-positive cases were also p53-positive. The results indicate that p53 mutations and c-erbB-2 gene alterations play a role in the neoplastic transformation of gall bladder epithelial cells. Co-expression of p53 and c-erbB-2 suggests that alterations of these genes might act in concert in the neoplastic transformation. The occurrence of p53 expression in gall bladder dysplasias suggests that p53 mutations could be an early event in the evolution of some gall bladder carcinomas, as has been suggested for some other types of tumours, such as lung squamous cell carcinomas.

Adenocarcinoma↗

p53 immunohistochemistry in transitional cell carcinoma and dysplasia of the urinary bladder correlates with disease progression.

Immunohistochemically detectable p53 protein using a polyclonal antibody (CM-1) was studied in 42 carcinomas of which 11 were grade I, 22 grade II and nine grade III carcinomas. Additionally 14 urothelial dysplasias were studied. In 11 of these a diagnosis of transitional cell carcinoma was established before and in one after the dysplasia diagnosis. Twenty-one out of 42 (50%) cases of transitional cell carcinoma were positive for the p53 protein. Eleven out of 14 (78%) dysplasias and 10/12 (83%) related carcinomas were p53 positive. One out of 11 grade I (9%), 12/22 grade II (55%) and 8/9 grade III (89%) tumours showed positivity for p53. There were significantly more p53 positive cases in grade II-III tumours than in grade I tumours (P = 0.004). There were significantly more p53 positive cases in stage T2-T4 tumours than in stage T1 tumours (P = 0.035). In only one case among the 11 dysplastic lesions following the treatment of a carcinoma the dysplastic lesion was p53 negative while the preceding carcinoma was p53 positive. All dysplasias and 28 carcinomas were also immunostained for laminin and type IV collagen to evaluate the continuity of basement membranes (BMs). Clearly disrupted BMs were observed only in grade III carcinomas. These cases showed the most p53 immunopositivity. The results show a strong association of p53 staining between dysplasias and transitional cell carcinomas of the urinary bladder indicating that these lesions might share similar p53 changes. The correlation to grade, clinical stage and to disrupted BM suggests that p53 mutations may be associated with the evolution of aggressive growth characteristics in transitional cell carcinomas or, alternatively, that p53 positive tumours of a more aggressive type from the start. Whether p53 staining can be used as an adjunct in the assessment and follow-up of epithelial changes of patients treated for a p53 positive bladder carcinoma deserves to be studied.

Carcinoma, Transitional Cell↗

Tenascin immunoreactivity in lung tumors.

The distribution of tenascin immunoreactivity was analyzed in nonneoplastic lung tissue, benign lung tumors, and different types of lung carcinomas. In nonneoplastic lung tissue, tenascin could be observed in the basement membranes of the bronchial epithelium and endothelial cells, smooth muscle cells, and bronchial cartilage. Strong tenascin immunoreactivity was seen in the stroma of all the carcinomas of various histologic types. The staining intensity was stronger in the stroma of squamous cell carcinomas than in the stroma of the other types of lung carcinomas. In 10 of 27 squamous cell carcinomas, a granular intracytoplasmic reactivity could also be observed in a subpopulation of tumor cells. Similar intracytoplasmic reactivity was observed in 2 of 27 adenocarcinomas and in both adenosquamous carcinomas. In other types of lung tumors, individual cells did not have intracytoplasmic tenascin, except for one case of leiomyoma, which showed a weak, linear, intracytoplasmic tenascin reactivity. In lung hamartomas, tenascin could be seen in the cartilaginous component of the tumor and in the areas of basement membranes of the bronchial epithelium. In the carcinoid tumors, the stroma displayed a faint positivity for tenascin. These results show that tenascin is widely expressed in the stroma of lung carcinomas. A proportion of lung carcinomas also expressed intracytoplasmic tenascin immunoreactivity, suggesting that tumor cells may be able to synthesize tenascin. In the lung, tenascin positivity is not, however, restricted to malignant neoplasms, as evidenced by the presence of tenascin in nonneoplastic lung parenchyma and in some benign lung tumors.

Antibodies, Monoclonal↗

Tenascin immunoreactivity in normal and pathological bone marrow.

AIMS: To determine the distribution of tenascin in normal and pathological bone marrow. METHODS: 48 different bone marrow lesions were studied immunohistochemically using a monoclonal antibody to tenascin. RESULTS: Tenascin immunoreactivity was found in lesions with increased fibrosis and high numbers of reticular fibres. The strongest immunoreactivity was found in myelofibrosis. Bone marrow from acute and chronic myeloid and lymphatic leukaemias showed weak or moderate immunoreactivity. In hyperplasias inconsistent reticular tenascin immunoreactivity was found; in normal bone marrow, only a few scattered positive fibres were occasionally seen. CONCLUSIONS: Tenascin was generally observed in conditions in which megakaryocytic hyperplasia was a feature. This is in line with the notion that tenascin synthesis in bone marrow fibroblasts is stimulated by TGF-beta which is synthesised by the megakaryocytic lineage. Tenascin also contains EGF-like repeats. It might therefore function as a growth promoter and in this way could also stimulate synthesis of other matrix components. On the other hand, tenascin could function as an adhesive molecule to some cells of the bone marrow. The presence of tenascin in many pathological states of the bone marrow suggests that it may have a role in their pathogenesis and that it also could be a potential marker of disease.

Antibodies, Monoclonal↗

Concurrent p53 expression in bronchial dysplasias and squamous cell lung carcinomas.

We analyzed the p53 protein immunohistochemically in bronchial dysplasias or squamous cell carcinomas in situ and in squamous cell lung carcinomas occurring in the same patients. The polyclonal antibody used (CM-1) is directed against the wild-type p53 protein, but also recognizes the mutated p53 in formalin-fixed and paraffin-embedded sections. To study the integrity of basement membranes (BMs) and the possible invasion of the dysplastic epithelium, immunostainings for the BM proteins laminin and type IV collagen were used. Nine of the 17 dysplasias showed p53 protein expression (53%); it was significantly more often seen in severe dysplasias and carcinomas in situ than in mild or moderate dysplasias (P = 0.04). The p53 antigenicity was generally located in the basal part of the epithelium. The BMs beneath mildly dysplastic epithelia were continuous. In contrast, those under moderately or severely dysplastic epithelia showed occasional disruptions. p53 protein expression was also found in dysplastic epithelium above a continuous BM suggesting an ominous process before signs of invasion. Twelve of the 17 squamous cell carcinomas showed p53 protein expression (71%). There was a significant concurrent p53 expression in bronchial dysplasias and their related squamous cell carcinomas (P = 0.009), so that all nine cases of p53 positive bronchial dysplasia also showed p53 positivity in the associated squamous cell carcinomas. These findings indicate that p53 protein expression is possible in premalignant bronchial lesions, and suggests that the p53 expression could, at least in some cases, be an early event in the development of a squamous cell carcinoma of the lung.

Aged↗

p53 immunohistochemistry in malignant fibrous histiocytomas and other mesenchymal tumours.

In this study we analysed by immunohistochemistry the expression of p53 protein in 14 malignant fibrous histocytomas (MFHs), 22 other types of sarcoma (eight leiomyosarcomas, four rhabdomyosarcomas, four liposarcomas, two fibrosarcomas, two chondrosarcomas, one malignant schwannoma, and one dermatofibrosarcoma protuberans), and 25 non-malignant mesenchymal lesions (eight dermatofibromas, four cases of nodular fasciitis, three leiomyomas, three fibromatoses, two epithelioid.leiomyomas, two neurofibromas, one schwannoma, one myositis ossificans, and one giant cell tumour of tendon sheath). Four MFHs and nine other types of sarcoma (four leiomyosarcomas, two chondrosarcomas, one liposarcoma, one fibrosarcoma, and one dermatofibrosarcoma protuberans) showed nuclear positivity for p53. Of the benign soft tissue lesions, p53 positivity was observed in two fibromatoses, one nodular fasciitis, and one dermatofibroma. The number of p53-positive cells in these benign lesions was considerably smaller than that in most of the p53-positive sarcomas. The p53 positivity in MFHs and other types of sarcoma indicates that p53 gene alterations may play a part in the neoplastic transformation of these tumours. The occurrence of p53 positivity in benign mesenchymal lesions suggests that sometimes p53 protein may accumulate in cells without an associated malignancy. Because of this, p53 immunoreactivity cannot, by itself, be used as a criterion of malignancy. According to our results, p53 positivity in over 1 per cent of tumour cells in mesenchymal lesions favours malignancy.

Genes, p53↗

Low p53 protein expression in salivary gland tumours compared with lung carcinomas.

Fifty-one salivary gland tumours (23 pleomorphic adenomas, 5 Warthin's tumours, 12 mucoepidermoid carcinomas, 7 adenoid cystic carcinomas, 3 undifferentiated carcinomas and 1 acinic cell tumour) and 27 lung carcinomas (18 squamous cell carcinomas) were analysed immunohistochemically for the expression of p53 nuclear phosphoprotein. Eight out of 51 (16%) salivary gland tumours were p53 positive. Three of these were benign and 5 malignant. All 3 benign salivary gland tumours were pleomorphic adenomas and expressed only occasional nuclear positivity with less than 1% of tumour cells positive. Of the 5 p53-positive malignant tumours, 3 were mucoepidermoid carcinomas and 2 undifferentiated carcinomas. The malignant salivary gland tumours expressed more than 1% of positive nuclei in every case. Seventeen lung carcinomas were p53 positive (63%). Thirteen of these were squamous cell carcinomas, 3 were adenocarcinomas and 1 small cell lung carcinoma. The results show that mutations of the p53 gene may be infrequent in salivary gland tumours when compared with lung carcinomas. The relatively indolent course of some histological types of malignant salivary gland tumours could be associated with the preservation of the non-mutated p53 gene in most of these tumours. The presence of p53 positivity in some pleomorphic adenomas might, on one hand, suggest that p53 gene alterations are also present in these tumours; on the other hand, the accumulation of the p53 protein in these tumours might also be due to some unknown mechanism, not necessarily related to p53 gene mutation.

Adenocarcinoma↗