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Characterization of a transthyretin-related amyloid fibril protein from cerebral amyloid angiopathy in type I familial amyloid polyneuropathy.

Recently, it has been reported that transthyretin (TTR)-immunoreactive amyloid deposition with cerebral amyloid angiopathy in central nervous system is a common pathological finding in type I familial amyloid polyneuropathy (FAP). In the present study, we performed isolation and sequence analysis of TTR-related amyloid fibril protein from the meninges of a patient with type I FAP. Purified major amyloid fibril protein had a molecular weight of 15 kDa. Complete sequence analysis revealed that this amyloid fibril protein was a variant TTR with a single amino acid substitution of methionine for valine at position 30. This variant TTR is a previously unrecognized as cerebrovascular amyloid fibril protein. Furthermore, the patients with type I FAP are well known to have the variant TTR in the serum. These suggest that cerebrovascular amyloid fibril protein in type I FAP may derive from a serum precursor.

Amino Acid Sequence

[Amyloid transfer from a syngenous transplant of amyloid spleen in intact and amyloid mice].

Investigations were carried out on male CBA mice with casein-induced amyloidosis. Fragments of spleens from the amyloid and intact donors were transplanted simultaneously to the opposite kidney poles, subcapsularly, to the intact and amyloid recipients. Amyloid deposits were found in 40 per cent of intact recipients both in their own spleens and in the grafts from intact donors. In amyloid recipients amyloid deposits developed in the grafts from intact donors only in 5 per cent of the animals (observation periods from 5 days to 6 months after the transplantation). It is amyloidogenic cells migration and the depression of this mechanism in amyloid mice.

Amyloidosis

Ultrastructure of the microglia that phagocytose amyloid and the microglia that produce beta-amyloid fibrils.

The function of microglia associated with beta-amyloid deposits still remains a controversial issue. On the basis of recent ultrastructural data, microglia were postulated to be cells that form amyloid fibrils, not phagocytes that remove amyloid deposits. In this electron microscopic study, we examined the ability of microglia to ingest and digest exogenous amyloid fibrils in vitro. We demonstrate that amyloid fibrils are ingested by cultured microglial cells and collected and stored in phagosomes. The ingested, nondegraded amyloid remains within phagosomes for up to 20 days, suggesting a very limited effectiveness of microglia in degrading beta-amyloid fibrils. On the other hand, we showed that in microglial cells of classical plaques in brain cortex of patients with Alzheimer's disease, amyloid fibrils appear first in altered endoplasmic reticulum and deep infoldings of cell membranes. These differences in intracellular distribution of amyloid fibrils in microglial cells support our observations that microglial cells associated with amyloid plaques are engaged in production of amyloid, but not in phagocytosis.

Amyloid

The potassium permanganate method. A reliable method for differentiating amyloid AA from other forms of amyloid in routine laboratory practice.

Alterations in affinity of amyloid for Congo red after incubation of tissue sections with potassium permanganate, as described by Wright el al, were studied. The affinity of amyloid for Congo red after incubation with potassium permanganate did not change in patients with myeloma-associated amyloidosis, familial amyloidotic polyneuropathy, medullary carcinoma of the thyroid, pancreatic island amyloid, and cerebral amyloidosis. Affinity for Congo red was lost after incubation with potassium permanganate in tissue sections from patients with secondary amyloidosis and amyloidosis complicating familial Mediterranean fever (consisting of amyloid AA). Patients with primary amyloidosis could be divided into two groups, one with potassium-permanganate--sensitive and one with potassium-permanganate--resistant amyloid deposits. These two groups correlated with the clinical classification in typical organ distribution (presenting with nephropathy) and atypical organ distribution (presenting with cardiomyopathy, nephropathy, and glossopathy) and the expected presence of amyloid AA or amyloid AL. Potassium permanganate sensitivity seems to be restricted to amyloid AA. The potassium permanganate method can be important in dividing the major forms of generalized amyloidosis in AA amyloid and non-AA amyloid. This can be used for differentiating early stages of the disease and cases otherwise difficult to classify. It is important to define patient groups properly, especially in evaluating the effect of therapeutic measures. (Am J Pathol 97:43--58, 1979).

Amyloid

Phagocytosis and deposition of vascular beta-amyloid in rat brains injected with Alzheimer beta-amyloid.

The presence of extracellular deposits of beta-amyloid protein in the brain is a hallmark of Alzheimer's disease (AD). In an effort to determine the effect of amyloid in an animal model, the authors injected amyloid cores isolated from AD brains into the cortex and hippocampus of rats. Lipofuscin, a major contaminant of the plaque core preparation, was injected on the contralateral side and used as a control to induce an analogous phagocytic cell response. Rats were sacrificed 2 days, 7 days, and 1 month after injection and amyloid located by four histochemical techniques. Amyloid and lipofuscin move from the site of injection into otherwise undamaged neuropil, persist for at least 1 month and are both associated with increases in glial fibrillary acidic protein and microglia (OX-42) staining. By 1 week, many of the amyloid cores are ingested by phagocytes. Some of the beta-amyloid-containing phagocytes migrate to the vessels and to the ventricles, and by 1 month, a significant amount of the amyloid is directly associated with the vessels. This suggests that phagocytic cells can internalize exogenous amyloid and attempt to clear it from the central nervous system (CNS). Therefore, the observed distribution of amyloid is not necessarily the initial site of deposition.

Amyloid beta-Peptides

The amyloid P-component (protein AP): an integral part of the amyloid substance?

The P-component of amyloid (protein AP) appears to be present in all types of amyloid substance regardless of the clinical category of amyloidosis or the chemical class of the amyloid fibril. The role of protein AP in the formation of amyloid substance has not been established. In a patient with primary amyloidosis, significant amounts of protein AP were found closely associated with the amyloid fibril proteins and was released from the latter only after dissociation and reduction of the amyloid fibril preparation. EDTA seemed to be very effective in releasing protein AP, and it is thought that the close association between the amyloid fibrils and protein AP is calcium-dependent. The very close association between the amyloid fibrils and protein AP suggests that the latter is an integral part of the amyloid substance.

Amino Acid Sequence

Seminal vesicle amyloid: the first example of exocrine cell origin of an amyloid fibril precursor.

Amyloid fibrils have been extracted from seminal vesicles, and a dominant 14 kD amyloid fibril protein has been identified. An antiserum to this protein reacted both with amyloid and with epithelial cells in some normal seminal vesicles. These reactions were blocked with seminal vesicle secretion and seminal vesicle amyloid fibril protein, but not by degraded amyloid fibrils or fibril protein from other types of amyloid. It is concluded that seminal vesicle amyloid is derived from secretory proteins of the seminal vesicles. As such, it is the first amyloid described which appears to be the product of an exocrine secretory cell.

Aged

Detection of autoantibodies against islet amyloid polypeptide in human serum. Lack of association with type 1 (insulin-dependent) diabetes mellitus, or with conditions favouring amyloid deposition in islets. The Belgian Diabetes Registry.

A radiobinding assay for the detection of autoantibodies against islet amyloid polypeptide was developed, analytically validated, and--in parallel with a similar assay for the detection of autoantibodies against insulin--applied to sera from recent-onset Type 1 (insulin-dependent) diabetic patients and from age- and sex-matched control subjects. There was no difference in islet amyloid polypeptide autoantibody titres between patient groups and matched control subjects, nor within subject groups according to age. At onset of Type 1 diabetes, elevated islet amyloid polypeptide-autoantibody levels (> 97th percentile of control subjects) were only detected in 1 of 30 patients aged 0-19 years and in 2 of 35 patients aged 20-39 years. By contrast, insulin autoantibodies were frequently demonstrated, in particular at onset of diabetes under age 20 (0-19 years: 18 of 30 patients; 20-39 years: 10 of 35 patients; p < 0.01 vs matched control subjects). Islet amyloid polypeptide autoantibodies were not detectable in 3 insulinoma patients nor in 37 patients (aged 33-70 years) with Type 2 diabetes (vs 1 of 40 in matched control subjects). In positive serum, adsorption onto protein A-Sepharose removed islet amyloid polypeptide binding activity, hereby confirming its antibody nature. In conclusion, Type 1 diabetes is associated with an age-dependent autoantibody reaction against insulin but not against islet amyloid polypeptide. Conditions associated with amyloid deposition in islets (Type 2 diabetes, insulinoma and ageing) do not favour the formation of autoantibodies against islet amyloid polypeptide.

Adolescent

Immunohistochemical characterization of amyloid proteins in sural nerves and clinical associations in amyloid neuropathy.

To test whether immunohistochemical characterization of proteins in amyloid deposits in biopsied sural nerves gives reliable and useful diagnostic information using commercially available reagents, biopsy specimens of sural nerves from 38 patients with amyloid neuropathy were studied. Transthyretin (TTR) was detected in the amyloid deposits of 11 nerves, lambda light chains (LC) in 8 nerves, kappa LC in 7 nerves, and both lambda and kappa LC in 3 nerves. In 9 nerves, the amyloid deposits were too small to allow adequate immunohistochemical characterization of amyloid proteins in serial sections. Evidence that immunohistochemical characterization was correct came from: 1) evaluation of kin, 2) search for monoclonal proteins in the plasma, and 3) sequencing of the gene abnormalities in TTR+ cases. In 9 of 11 TTR+ cases, in which DNA could be obtained, sequencing of the gene showed that each of the 9 cases was heterozygous for a gene mutation; 7 had previously described mutations and 2 undescribed mutations. Therefore, in the nine sporadic cases without plasma monoclonal light chains, the immunohistochemical characterization correctly identified the protein in amyloid as transthyretin. Likewise, there was a high concordance between immunoglobulin light chains in plasma and light chains in amyloid in primary amyloidosis. Evaluation of the type, distribution, and severity of the neurologic symptoms and deficits showed: 1) the sensorimotor and autonomic neuropathy of amyloidosis characteristically affects proximal as well as distal limbs, and 2) the type of amyloidosis probably cannot be determined from the characteristics or severity of the neuropathy alone or from the location or size of amyloid deposits in nerve.

Aged

[Amyloid in articular cartilage--a new type of amyloid?].

Hip and knee joints from 48 randomly selected autopsies have been investigated for amyloid deposits by means of conventional histology and immunohistology. 45 of 48 hip joints (93.75%) and 28 of 32 knee joints (87.5%) contained amyloid deposits. Amyloid has been found in a thin layer along the surface as well as infissures of the cartilage and around chondrocytes with increasing intensity towards the articular surface. Amyloid characteristically showed apple green birefringence in polarized light after staining with alkaline Congo red and pretreatment with potassium permanganate did not change intensity of reaction in most cases. None of the usual constituents of amyloid could be demonstrated by immunohistological methods. P-component (when present) kept the distribution of the amyloid material. It is possible that articular cartilage amyloid represents a new class of amyloid but its identity is to be proved by chemical analysis.

Adult

Intraperitoneal amyloid formation by amyloid enhancing factor--rich macrophages in ascitic fluid.

Although resident peritoneal cells from amyloidotic mice (amyloidotic peritoneal cells) are capable of processing the precursor protein of secondary amyloidosis, serum amyloid A (SAA) to amyloid fibrils, the peritoneum is a rare site for amyloid deposition. This is considered to be due to a deficiency of SAA in the peritoneum. To increase the supply of SAA to the peritoneum, ascitic fluid containing about the same protein constituents as in the serum was induced in mice. Amyloidotic peritoneal cells were packed in a microchamber which was shielded with filter membranes, and cultured in ascitic fluid supplemented with additional inflammatory factors. On the 7th day, Congo red-positive structures which showed green birefringence under polarized light were found inside and occasionally outside the chamber. By anti-AA or -SAA immunostaining, amyloid deposits and the cell surfaces of macrophages were positive. Immunologic depletion of T- and B-lymphocytes from the amyloidotic peritoneal cells did not adversely effect the amyloid formation in microchambers. These results suggest that either ascitic fluid containing sufficient amounts of SAA, or peritoneal macrophages with a high amyloid enhancing factor (AEF) activity are indispensable for AA amyloid fibrillogenesis in the peritoneum.

Amyloid

Amyloid of human islets of Langerhans. II. Electron microscopic analysis of isolated amyloid.

Isolated amyloid from the islets of Langerhans of patients with maturity onset diabetes mellitus was compared with amyloid fibrils from patients with different types of systemic amyloidosis. It was found that systemic amyloids had in common rigid and non-branching filaments with a width of about 75 A and that these filaments sometimes were attached laterally, forming thicker fibrils. Similar filaments could also be extracted from islet amyloid but the main part of this amyloid was built up by large aggregates of very thin and often very wavy units. This structure, which has not been previously described in human amyloid, probably explains some properties of isolated islet amyloid.

Amyloid

Senile plaques in cerebral amyloid angiopathy show accumulation of amyloid precursor protein without cytoskeletal abnormalities.

The abnormal neurites that surround beta-amyloid in senile plaques (SP) in Alzheimer disease contain beta-amyloid precursor protein (beta APP) or abnormal filaments which react with antibodies to tau. Occasionally, beta APP and abnormal filaments are present in the same neurite. Whether both types of abnormal neurites are reactive to the presence of beta-amyloid or they are instead independent from each other is unknown. To begin to clarify this issue, we comparatively studied beta APP and tau-epitopes in SP from cases of classical Alzheimer disease and cases of cerebral amyloid angiopathy, with SP but without neurofibrillary pathology. In subjects with cerebral amyloid angiopathy, about one-third of SP, the same percentage as in Alzheimer disease, were beta APP reactive in the absence of tau-reactivity. beta APP epitopes were ultrastructurally localized in dense bodies of probable lysosomal origin, adjacent to the core of SP. These results demonstrate that beta APP and tau-reactive cytoskeletal alterations occur independently in the neurites of SP. The presence of beta APP in dystrophic neurites of SP and the localization of beta APP in lysosomes suggest that beta APP containing dystrophic neurites may play a role in the extracellular deposition of amyloid.

Alzheimer Disease

Islet amyloid polypeptide (IAPP) and pancreatic islet amyloid deposition in diabetic and non-diabetic patients.

Twenty pancreata of non-diabetic patients and 17 pancreata of diabetic patients, including two patients with insulin-dependent diabetes mellitus, were immunohistochemically studied using antiserum against human islet amyloid polypeptide (IAPP). The islet beta cells in non-diabetic patients were immunoreactive for both IAPP and insulin. Amyloid deposition immunoreactive for IAPP was detected in six of 20 pancreata of non-diabetic patients. The plasma glucose level of three of these six patients was elevated to more than 200 mg/dl, and that of the other three ranged from 143 to 162 mg/dl; all six were receiving intravenous hyper-alimentation and had no history of diabetes prior to treatment. Amyloid deposition was present in all patients with non-insulin-dependent diabetes mellitus (NIDDM). The deposition was absent in the pancreata of two secondary diabetic patients, one of whom had received steroid hormone for bronchial asthma and the other of whom had liver cirrhosis with hepatocellular carcinoma; deposition was also absent in the pancreas of a patient with impaired glucose tolerance diagnosed on a 75-g oral glucose load. Heterogeneous expression of immunoreactivities of beta cells for insulin and for IAPP was present, suggesting independently regulated production and secretion of the peptides. Immunoreactivity of beta cells was more sensitively decreased for IAPP than for insulin in the islets of NIDDM patients. The decreased immunoreactivity for IAPP suggested an initial stage of disturbed beta-cell function, even if the immunoreactivity for insulin was apparently intact or the amyloid deposition in the islets was insignificant. The degree of amyloid deposition immunoreactivity for IAPP did not necessarily reflect the severity of diabetes mellitus. Amyloid deposits were seen at the narrow spaces beneath the insular capsule of connective tissues and the perivascular region or, in some cases, occupying the whole of the islet. The diabetogenic role of IAPP is unclear, but the deposition might be an accelerating factor which disturbs beta-cell function.

Adult

Characterization of an amyloid fibril protein from senile cardiac amyloid.

A protein, ASCA, is isolated from amyloid fibrils extracted from heart tissue of five different patients with senile cardiac amyloidosis (SCA). The proteins of all five patients showed immunological identity when reacted with an antiserum raised against one of the proteins. In contrast, no reaction was obtained with antisera against a variety of other amyloid proteins. The antiserum against the subunit protein of senile cardiac amyloid did not react with any other amyloid preparations tested, nor with extracts of normal heart tissue. Thus, the subunit protein appeared to be unique to senile heart amyloid. The protein could form fibrils in vitro, had a mol wt of about 6,000 daltons and the amino acid compositions investigated in two cases showed extensive similarities but were clearly different from that of protein AA of secondary amyloid fibrils.

Aged

Amyloid production by dermal fibroblasts. Electron microscopic studies on the origin of amyloid in various dermatoses and skin tumours.

Electron microscopic investigations in 7 patients with different dermatoses or skin tumours containing amyloid showed that amyloid is synthesized in the cytoplasm of dermal cells. In 3 cases of localized primary amyloidosis of the skin highly active cells were demonstrated, showing grossly dilated cisternae of rough endoplasmic reticulum, resembling fibroblasts. Their intracellular product seemed amorphous, later filamentous, and was then released into the extracellular space. Extracellular aggregations of typical amyloid filaments were found partially surrounded by thin cytoplasmic remnants of the cells producing them. Subclinical amounts of amyloid found in porokeratosis of Mibelli, in superficial basal-cell carcinoma, in senile skin, and in clinically normal skin of a patient with malignant melanoma showed the same characteristics. Other cell types such as plasma cells and mast cells were well preserved and seemed stimulated; however, no amyloid precursors were found in their cytoplasm and no release was seen. We, therefore, conclude that dermal amyloid is generally produced by falsely programmed fibroblasts.

Adult

Islet amyloid polypeptide-derived amyloid deposition increases along with the duration of type 2 diabetes mellitus.

To investigate the involvement of islet amyloid polypeptide (IAPP) and amyloid deposits in the pathophysiology of this disease, we studied the relationship between IAPP-derived amyloid deposition and the clinical features in type 2 diabetes mellitus. We examined pancreata obtained from 37 type 2 diabetic subjects and 12 non-diabetic ones by immunohistochemical techniques using two specific antibodies to IAPP. IAPP-derived deposits occurred in 1 of the 12 (8.3%) non-diabetic subjects and 28 of the 37 (75.7%) diabetics. When diabetic patients were divided into categories according to the presence of the deposits, the duration of the disease was significantly longer in patients with amyloid than that in the patients without it. The odds ratio of type 2 diabetes mellitus of at least 14-years-duration to the deposition was significantly high, and a body weight of at least 120% maximal ideal body weight was relatively high. In conclusion, IAPP-derived amyloid deposition increases along with the duration of type 2 diabetes mellitus and obesity may further enhance these deposits, hence hypersecretion of IAPP may be involved in the progression of this disease.

Aged

Islet amyloid polypeptide (IAPP) gene analysis in a Japanese diabetic with marked islet amyloid deposition.

Islet amyloid polypeptide (IAPP) is a major constituent of pancreatic amyloid deposits in many patients with non-insulin-dependent diabetes mellitus (NIDDM). We analyzed the IAPP gene in a Japanese diabetic with marked islet amyloid deposition. Pancreatic specimens were obtained from an 87-year-old NIDDM patient who had had diabetes for 37 years. All islets (100/100) in his pancreas had IAPP-positive amyloid deposition, and 70% of the area of the islet was replaced by amyloid. We amplified the coding regions as well as the upstream region of the IAPP gene by polymerase chain reaction (PCR). The products of PCR were sequenced, and the sequences of the coding regions were identical to the Caucasian ones. However, the nucleotides of two positions of 5'-upstream and one position of intron 2 were different from the Caucasian data: the upstream region of the IAPP gene in the patient had cytosine substituted for thymine at -259, and had two alleles including cytosine and adenine at -229, respectively. The nucleotide of position 539, that is guanine, was deleted. A possible difference in the IAPP promoting region between the Japanese and Caucasian population was suggested.

Aged