[Cirrhosis, dysplasia and hepatocarcinoma. What are the practical consequences?].
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Biomedical subjects
Publications and source records attributed to C Balabaud.
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Liver biopsies were taken from ten AIDS patients. Liver architecture was normal in all patients. On 1-micron-thick sections stained with toluidine blue, all ten cases showed lipid overload of perisinusoidal cells (1 massive, 5 moderate and 4 mild) compared to 2/8 in control patients, who had mild lipid overload. Other sinusoidal abnormalities such as hypertrophy of Kupffer cells and inclusions in endothelial cells were also noticed. Some hepatocytes presented evidence of cellular damage. Perisinusoidal cell lipid overload was not associated with hypervitaminosis A. We hypothesize that the abnormal accumulation of lipids in perisinusoidal cells (non-induced by hypervitaminosis A) in patients with AIDS could be due to defective transport of vitamin A from perisinusoidal cells to hepatocytes, and/or from hepatocytes to blood. The cause of the defect is unknown. Since lipid overload occurs in many and diverse conditions (diabetes, cholestasis, primary biliary cirrhosis, etc.), it seems reasonable to propose that the defect is non-specific and limited to functional or structural damage of the liver whether induced by drugs, liver or systemic diseases.
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The existence of a marginal lymphocyte population in rat liver sinusoids has already been demonstrated using the sinusoidal lavage method. We used the same technique to study the lymphocyte population in human liver obtained ex vivo after partial hepatectomy for benign or malignant tumors and compared it with peripheral and portal blood lymphocyte populations. Percentages of lymphocyte surface phenotypes were evaluated by flow cytometry. The lymphocyte population obtained from human liver is mainly made up of CD56+ (35%) cells. This percentage is three times greater than that found in peripheral and portal blood. Two-color flow cytometry analysis showed that within the CD56+ liver cell population, at least three distinct subsets could be found: (a) CD3+/CD56+/CD16-; (b) CD3-/CD56+/CD16-; and (c) CD3-/CD56+/CD16+. Although these subsets were also present in peripheral and portal blood, the percentage distribution was completely different because most CD56+ cells in peripheral and portal blood belonged to the CD3-/CD56+/CD16+ subset. These results show the existence of a heterogeneous natural killer cell population in human livers with tumors. The functional significance of this heterogeneity still needs to be explained.
Liver sinusoids are special capillaries that are limited by fenestrated endothelial cells, without a genuine basement membrane, surrounded by perisinusoidal cells storing vitamin A, and harbouring Kupffer cells and pit cells, resident macrophages, and large granular lymphocytes, respectively. Each nonparenchymal cell and parenchymal cell of the liver interacts with all others and with the extracellular matrix. Therefore, the functional ability of each cell is constantly being modified by the metabolic activity of the others. Human liver biopsies (132), needle or surgical, perfusion-fixed with glutaraldehyde and processed for transmission electron microscopy (TEM), and occasionally for scanning electron microscopy (SEM), were examined. The study included liver diseases (such as alcoholic liver diseases, benign and malignant liver tumors, cholestasis of various origins, fulminant hepatitis, acute rejection after orthotopic liver transplantation, Budd-Chiari syndrome), as well as general or extrahepatic diseases (such as diabetes, hemochromatosis, hypervitaminosis A, various hematological disorders), and normal controls. Ultrastructural abnormalities are described and illustrated under two different headings: 1) elementary lesions of sinusoidal cells (endothelial, Kupffer, perisinusoidal and pit cells), nonsinusoidal cells (in the space of Disse and/or in the lumen), the extracellular matrix; and 2) the major pathological entities including perisinusoidal fibrosis, capillarization of sinusoids, sinusoidal dilatation, and peliosis. In the discussion, an overview of the major abnormalities reported in the literature is presented, and some specific questions regarding 1) perisinusoidal fibrosis in liver with normal histology, 2) the overload of perisinusoidal cells with lipids in non-hypervitaminosis A intoxication and 3) the etiological relationship of sinusoidal dilatation, peliosis, perisinusoidal fibrosis, or sinusoidal tumors with drugs and toxic compounds are discussed. In the event that lesions are not specific to any diagnosis, the knowledge of the ultrastructure of sinusoids is extremely useful from the perspective of the liver as an ecosystem.
In this study, the case of a patient presenting a second hepatocellular carcinoma 13 years after resection of a first tumor of the same type is reported. In this case, etiological investigations remained negative, but an incomplete form of syndromatic Alagille syndrome with paucity of bile ducts in the nontumoral tissue was detected and associated with nodular regenerative hyperplasia and foci of dysplasia. Malignant transformation in Alagille syndrome seems to be extremely rare. The fact that such tumors evolve very slowly could be an argument for partial hepatectomy and, if necessary, liver transplantation.
Unmyelinated nerve fibres are visible in the human hepatic lobule. They extend through the Disse space, surrounded by Schwann cell processes, often close to perisinusoidal cell processes. A few bare nerve endings or varicosities are found contiguous to either hepatocytes or perisinusoidal cells. These nerve endings or varicosities contain large and small granular vesicles and small clear vesicles. This heterogeneity probably corresponds to the presence of various neurotransmitters (noradrenaline, acetylcholine, various neuropeptides...). The effect of nerves on perisinusoidal cells has not yet been elucidated. However, the location, shape, morphology and origin of perisinusoidal cells would suggest that they play a role in the hemodynamic regulation of sinusoidal blood flow. It has recently been shown how important non-parenchymal-parenchymal communication is in the action of nerves on glucose release by hepatocytes; the cell to cell communications may also apply to nerves and sinusoidal cells for the hemodynamic regulation of sinusoidal blood flow.
Sinusoids and sinusoidal cells were examined by light and electron microscopy, using a rat model of postsinusoidal hypertension. One month after partial ligation of the vena cava (PLVC) above the hepatic veins, subcapsular hemorrhagic areas were visible with proliferation of hepatic veins; in non hemorrhagic areas, sinusoidal congestion was found. Postsinusoidal hypertension led to a significant increase in sinusoidal volume and to major abnormalities of the endothelium such as endothelial processes and pouches with numerous diaphragmed fenestrae; some red blood cells could be seen in these pouches. Endothelial cells sent out processes in between hepatocytes. Complete and incomplete pseudo-neolumens were found near sinusoids. Numerous Kupffer cells were located either in the sinusoidal barrier or infiltrating the Disse space close to extravasated red blood cells and perisinusoidal cell processes. 18 months after PLVC, lesions were much the same except for the presence of red blood cells in the Disse space.
A 33-year-old heterosexual white man underwent a liver biopsy for determination of mild elevation of aminotransferase levels (aspartate aminotransferase, two times; alanine aminotransferase, three times). The patient had acquired immunodeficiency syndrome (stage IVC2) with tuberculosis of the lymph nodes. Antibody to hepatitis B surface antigen and antibody to hepatitis B core antigen were positive. Syphillis tests were positive. Liver architecture was normal; sinusoids were dilated with perisinusoidal, centrilobular, and portal fibrosis. On a 1-micron-thick section and under electron microscopy, perisinusoidal cells appeared to be massively loaded with lipids, while endothelial cells contained numerous dense bodies. Some hepatocytes presented evidence of cell damage. Sinusoids were infiltrated by an increased number of lymphocytes and macrophages. This patient who had recently been treated for tuberculosis was not taking extra vitamin A. He had no disease so far reported as being associated with perisinusoidal cell hypertrophy. This case and others are evidence that acquired immunodeficiency syndrome represents another cause of perisinusoidal cell hypertrophy in which there is no documented hypervitaminosis A.
Three patients showing all the symptoms of idiopathic thrombocytopenic purpura underwent a splenectomy. A wedge liver biopsy revealed hepatic fibrosis around central veins and an increased perisinusoidal network on Sirius red staining. Fibrosis was moderate or mild. Liver histology was otherwise normal, as were liver function tests. Hepatic fibrosis could not be attributed to any known causes. Electron microscopy showed numerous Kupffer cells with intense phagocytic activity, and perisinusoidal cells with some of the characteristics of fibro/myofibroblasts. The mechanisms of fibrosis remain unknown but could be attributed, by analogy to agnogenic myeloid metaplasia, to the massive destruction of platelets liberating PDGF and to increased activation of macrophages.
A liver biopsy specimen was obtained from a 50-year-old patient whose clinical and functional liver tests showed no abnormalities but who had for some time a high vitamin A intake (109 X 10(6) IU over four years). Liver architecture was normal. Sinusoids were slightly dilated in zone 2. Perisinusoidal cells were numerous and enlarged. On Sirius red staining, there was mild fibrosis of the central veins, portal tracts, and terminal portal venules and perisinusoidal fibrosis in zone 1 of the acinus. Liver vitamin A level was increased. By electron microscopy, perisinusoidal cells filled with numerous lipid droplets had slightly dilated rough endoplasmic reticulum, numerous minute filament condensations below the plasma membrane, and stellate-shaped processes giving them the appearance of fibroblast-myofibroblast-like cells. Numerous collagen bundles, fibrils, amorphous material, and fragments of basement membrane-like material were identified in Disse's space. Immunocytochemistry showed increased amounts of collagen types I, III, IV, laminin, and fibronectin. This observation suggests that vitamin A per se, and not the cellular damage often seen in hypervitaminosis A, is responsible for fibrosis.
Four patients with liver carcinoma (case 1: hepatocellular carcinoma; cases 2 and 3: metastases; case 4: adenocarcinoma possibly of hepatic origin) underwent a wedge liver biopsy taken at some distance from the tumor. Liver histology was normal in cases 2 and 3. Sinusoids were dilated in case 4. Fibrosis formed bridges between portal tracts in case 1. In all 4 cases, sinusoids contained lymphocytic cells. By electron microscopy (perfusion-fixation with glutaraldehyde) numerous lymphocytes could be identified as pit cells with characteristic dense granules and occasional rod-cored vesicles. The majority of the pit cells were luminal cells in contact with endothelial or Kupffer cells; some were in the Disse space. It is now accepted that pit cells are resident large granular lymphocytes with natural killer activity. The increase in the number of pit cells in liver carcinoma compared to the number observed in the control group (uncomplicated gallbladder lithiasis) could be hypothetically interpreted as a defense mechanism against tumor extension.
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10 patients with thrombocytopenic purpura (TP) underwent splenectomy. Eight of these patients had idiopathic TP (certain or probable). All had normal liver function tests. Liver histology of the surgical biopsy was normal with the exception of a non specific mild portal infiltration in 6 cases. On Sirius red staining the perisinusoidal network was normal in 3 cases, mildly or moderately increased in 5 cases and often associated with perivenular fibrosis. Collagen types I, III, IV, laminin and fibronectin were increased in the 8 biopsies tested. On semi-thin sections, numerous Kupffer cells were observed. Under the electron microscope, sinusoidal abnormalities were very similar in all 7 patients studied: numerous Kupffer cells containing abundant lysosomes, numerous collagen bundles in the Disse space, active endothelial cells, transformation of some perisinusoidal cells into cells with some of the characteristics of fibroblasts (increased RER) and myofibroblasts (peripheral condensations of the filamentous network), increased fragments of basement membrane-like material. In two cases there was an increase in the number of perisinusoidal cells loaded with lipids. The similarity of the lesions and the absence of other fibrogenic causes (except in 2 cases) suggest that TP may represent another group of diseases with perisinusoidal fibrosis. The aetiology of fibrosis remains unknown but platelet derived growth factor and activated macrophages may play a major role.
Using electron microscopy, we investigated how cellular debris, formed in the Disse space during cholestasis, was cleared. Ten patients with cholestasis of varied origin and severity were studied and compared with 10 controls without liver disease. In cholestatic patients, sinusoidal cells contained variable amounts of amylase PAS-positive material. In clean perfusion-fixed sinusoids the endothelial cells often appeared swollen and active, with few fenestrations. Hepatocyte blebs and cellular debris were sometimes seen in the Disse space. Two mechanisms were apparently involved in the clearing process: phagocytosis by macrophages either infiltrated into the Disse space, or forming the barrier; and the passage of debris from the Disse space into the sinusoidal lumen through the endothelial wall. Debris was either forced through enlarged pores or through the wall, with a progressive invagination followed by an outpouching in the lumen. The force, possibly provided by endothelial massage, may not be sufficient to push out cellular debris from the Disse space; morphological data seemed to indicate that endothelial damage may be a necessary factor. Debris present in the lumen was phagocytized by numerous active macrophages. Cellular debris was not observed in the Disse space of control patients.
A patient with agnogenic myeloid metaplasia suffered from gastrointestinal bleeding due to ruptured esophageal varices. The portal vein and its intrahepatic branches were patent. Except for the presence of myeloid cells, mainly megakaryocytes, in the sinusoids, liver histology was more or less normal. However, on Sirius red staining there was marked perisinusoidal fibrosis. In addition to numerous collagen bundles in the Disse space, electron microscopy also revealed the presence of hemopoietic cells, the transformation of perisinusoidal cells into fibroblasticlike or myofibroblasticlike cells, or both, and fragmentary deposits of basement membrane-like material. In the pathogenesis of sinusoidal hypertension as it occurs in agnogenic myeloid metaplasia, all the factors mentioned above should probably be taken into consideration.
A direct correlation exists between collagenization of Disse's space and the presence of diabetic microangiopathy in type I diabetes. To confirm and extend this finding, we studied four liver biopsy samples from two patients with type I diabetes (one with retinopathy) and two patients with type II diabetes (no retinopathy). All had normal or subnormal results on liver function tests and normal liver architecture. Levels of collagen types I, III, and IV, laminin, and fibronectin, as determined by immunocytochemical techniques, appeared increased in all patients. Liver biopsy samples were perfusion fixed for electron microscopy of sinusoids and sinusoidal cells. Numerous and thick collagen bundles could be seen in Disse's space, as could the increase of basement membrane-like material underlying the endothelial cells, perisinusoidal cells, and sinusoidal membrane of hepatocytes. Perisinusoidal cells were active and had abundant rough endoplasmic reticula and thick processes. This preliminary study indicates that collagenization of Disse's space is not specific to a certain type of diabetes. The increase of basement membrane-like material raises the question of whether liver sinusoids are truly different from other capillaries as far as diabetic microangiopathy is concerned.