Biomedical subjects
M Biggiogera
Publications and source records attributed to M Biggiogera.
Visualization of transcription sites at the electron microscope.
In order to localize at EM level the sites of transcription of both pre-mRNA and pre-rRNA, we have detected the DNA/RNA hybrid molecules and m3Gcapped structures by means of specific antibodies after short bromo-uridine (BrU) incorporation. In addition, the sections have been stained by a selective RNA stain, terbium citrate. Our data indicate that perichromatin fibrils incorporate BrU and are labeled by the anti-hybrid probe; this supports the idea that they are the pre-mRNA transcription sites. On the contrary, interchromatin granules do not incorporate BrU after short pulses and are not labeled by the anti-hybrid probe. Concerning the nucleolus, anti-hybrid and anti-BrdU antibodies colocalize only on the dense fibrillar component, suggesting that this is the site of rRNA transcription. Interestingly, the dense fibrillar component and the granular component, after specific RNA staining, show remarkable structural similarities, both containing fibrogranular RNA structures.
Fine structural analyses of pancreatic acinar cell nuclei from mice fed on genetically modified soybean.
We carried out ultrastructural morphometrical and immunocytochemical analyses on pancreatic acinar cell nuclei from mice fed on genetically modified (GM) soybean, in order to investigate possible structural and molecular modifications of nucleoplasmic and nucleolar constituents. We found a significant lowering of nucleoplasmic and nucleolar splicing factors as well as a perichromatin granule accumulation in GM-fed mice, suggestive of reduced post-transcriptional hnRNA processing and/or nuclear export. This is in accordance to already described zymogen synthesis and processing modifications in the same animals.
Nuclear localization of phosphorylated c-Myc protein in human tumor cells.
Using immunocytochemical techniques at light and electron microscopy, we analysed the distribution of phosphorylated c-Myc in actively proliferating human HeLa cells. The distribution pattern of c-Myc was also compared with those of other ribonucleoprotein (RNP)-containing components (PANA, hnRNP-core proteins, fibrillarin) or RNP-associated nuclear proteins (SC-35 splicing factor). Our results provide the first evidence that phosphorylated c-Myc accumulates in the nucleus of tumor cells, where it colocalizes with fibrillarin, both in the nucleolus and in extranucleolar structures.
Poly(ADP-ribose) polymerase cleavage during apoptosis: when and where?
Poly(ADP-ribose) polymerase-1 (PARP-1) plays the active role of "nick sensor" during DNA repair and apoptosis, when it synthesizes ADP-ribose from NAD(+) in the presence of DNA strand breaks. Moreover, PARP-1 becomes a target of apoptotic caspases, which originate two proteolytic fragments of 89 and 24 kDa. The precise relationship between PARP-1 activation and degradation during apoptosis is still a matter of debate. In human Hep-2 cells driven to apoptosis by actinomycin D, we have monitored PARP-1 activity by the mAb 10H, which is specific for the ADP-ribose polymers, and we have observed that poly(ADP-ribose) synthesis is a very early response to the apoptotic stimulus. The analysis of the presence and fate of the p89 proteolytic fragment revealed that PARP-1 proteolysis by caspases is concomitant with poly(ADP-ribose) synthesis and that p89 migrates from the nucleus into the cytoplasm in late apoptotic cells with advanced nuclear fragmentation.
Revealing the unseen: the organizer region of the nucleolus.
We carried out a high-resolution ultrastructural analysis of the nucleolus in mouse P815 cells by combining specific DNA and RNA staining, anti-fibrillarin immunolabeling, contrast enhancement by energy filtering TEM and phosphorus mapping by ESI to visualize nucleic acids. We demonstrated that specifically contrasted DNA, fibrillarin and phosphorus overlap within the nucleolar dense fibrillar component. Moreover, we describe a 'DNA cloud' consisting of an inner core of DNA fibers (fibrillar center) and a periphery made of extremely thin fibrils overlapping the anti-fibrillarin immunolabeling (dense fibrillar component). This highly sensitive approach has allowed us to demonstrate, for the first time, the exact distribution of DNA within the decondensed interphase counterpart of the NOR, which includes both the fibrillar center and the dense fibrillar component.
Fine-structural cytochemical and immunocytochemical observations on nuclear bodies in the bovine 2-cell embryo.
Nuclear bodies occurring during the 2-cell stage of bovine embryos (obtained either by in vitro fertilisation of in vitro matured ovarian oocytes, or collection after fertilisation and cleavage in vivo) were studied using ultrastructural cytochemistry and immunocytochemistry to determine whether their occurrence may be linked with the onset of embryonic transcription. In addition, the species-specific ultrastructural features of the interchromatin structures of the 2-cell bovine embryo were displayed. Three different types of nuclear bodies were distinguished: (i) nucleolus precursor bodies (NPBs), (ii) loose bodies (LBs) and (iii) dense bodies (DBs). In order to determine their possible functional significance, we considered parallels between these three nuclear entities and interchromatin compartments reported in other cells. As detected by their preferential ribonucleoprotein staining, all types of nuclear bodies contained ribonucleoproteins. In contrast to the other types of nuclear bodies studied, NPBs contained argyrophilic proteins but in no case they did show morphological features of functional nucleoli. Both compact and vacuolated forms of NPBs were seen in both in vivo and in vitro embryos, sometimes simultaneously in the same nucleus. LBs and DBs reacted with antibodies to Sm antigen, indicating the presence of a group of nucleoplasmic, non-nucleolar small nuclear ribonucleoproteins (snRNPs). The immunoreactivity for Sm antigen was more intense and homogeneous in DBs than in LBs. DBs were seen in both categories of embryo. A possible kinship of DBs with the sphere organelle known from oocytes of different animal species or the prominent spherical inclusions of the early mouse embryo nuclei is suggested. The last type of intranuclear body, the LBs, showed a composite structure. Their granular component, occurring in clusters and displaying immunoreactivity for Sm antigen, was similar to interchromatin granules and was therefore named IG-like granules. Another component forming the LBs showed a much finer structure and a lower immunoreactivity with anti-Sm antibodies. We suggest that this amorphous component may be related to the IG-associated zone. All three types of intranuclear bodies were often seen close together, suggesting their possible mutual functional relationship. From these and other observations we conclude that the intranuclear bodies in 2-cell bovine embryos correspond, with the exception of the NPB, to similar structures/compartments supposed to accumulate inactive spliceosomal components in certain phases of somatic cell nucleus functions. Accordingly, the occurrence of such nuclear bodies does not represent cytological evidence for RNA synthesis. In contrast to this, an important morphological feature revealing the status of the bovine 2-cell embryo is the vacuolisation of the NPB.
Heterogeneous ectopic RNP-derived structures (HERDS) are markers of transcriptional arrest.
We have reviewed the reports in the literature concerning the segregation and clustering of ribonucleoprotein (RNP) -containing nuclear structures in either physiological or experimentally induced conditions (i.e., spermiogenesis and erythropoiesis in mammals, early embryonic development, hibernation, spontaneous and drug-induced apoptosis, treatment with different drugs). Irrespective of the biological system or the experimental conditions, heterogeneous ectopic RNP-derived structures (HERDS) are always found. We hypothesize that the common event at the basis of this phenomenon might be the block in transcription; this is also consistent with our own and others' results on cultured cells after actinomycin D treatment. HERDS may therefore be considered as the morphological sign of transcriptional arrest. Based on the evidence that the restructuring/relocation of RNPs may be reversible, we also hypothesize that HERDS may serve as storage sites from which RNPs may be eventually retrieved, as soon as transcription restarts. Under acute stress conditions or during apoptotic cell death, the same reorganization of RNP-containing structures would be an adaptively suitable mechanism to induce an irreversible arrest in RNA processing, thus effectively blocking protein synthesis.
Structure and dynamics of hnRNP-labelled nuclear bodies induced by stress treatments.
We have previously described HAP, a novel hnRNP protein that is identical both to SAF-B, a component of the nuclear scaffold, and to HET, a transcriptional regulator of the gene for heat shock protein 27. After heat shock, HAP is recruited to a few nuclear bodies. Here we report the characterisation of these bodies, which are distinct from other nuclear components such as coiled bodies and speckles. The formation of HAP bodies is part of a general cell response to stress agents, such as heat shock and cadmium sulfate, which also affect the distribution of hnRNP protein M. Electron microscopy demonstrates that in untreated cells, similar to other hnRNP proteins, HAP is associated to perichromatin fibrils. Instead, in heat shocked cells the protein is preferentially associated to clusters of perichromatin granules, which correspond to the HAP bodies observed in confocal microscopy. Inside such clusters, perichromatin granules eventually merge into a highly packaged 'core'. HAP and hnRNP M mark different districts of these structures. HAP is associated to perichromatin granules surrounding the core, while hnRNP M is mostly detected within the core. BrU incorporation experiments demonstrate that no transcription occurs within the stress-induced clusters of perichromatin granules, which are depots for RNAs synthesised both before and after heat shock.
Rearrangement of nuclear ribonucleoproteins and extrusion of nucleolus-like bodies during apoptosis induced by hypertonic stress.
Short-term hypertonic (HT) stress induces apoptotic cell death in human EUE cells in culture, as observed by electron microscopy, agarose-gel electrophoresis of low-molecular-weight DNA, DNA flow cytometry and annexin-V-propidium iodide double-staining. During HT-induced apoptosis, nuclear ribonucleoprotein (RNP)-containing structures undergo rearrangement, with the formation of Heterogeneous Ectopic RNP-Derived Structures (HERDS) which pass into the cytoplasm, as already reported for other examples of spontaneous and drug-induced apoptosis. Of special interest was the observation that nucleolus-like bodies (NLBs) which resemble morphologically nuclear functional nucleoli may be extruded into the cytoplasm of apoptotic cells and are observed inside the cytoplasmic fragments blebbing-out at the cell surface; these NLBs still contain immunodetectable nucleolar proteins (such as fibrillarin). This is an additional example of RNP-containing structures of nuclear origin which are extruded from the nucleus, in an almost "native" form, during apoptosis.
Terminal differentiation of erythroblasts leads to RNP segregation and formation of heterogeneous ectopic RNP-derived structures.
We show an as yet unnoticed feature of mammalian erythrocyte maturation, i.e., the formation of heterogeneous ectopic RNP-derived structures in the nucleus of erythroblasts, occurring in parallel with chromatin condensation. Inside these structures, RNPs are always recognized by specific antibodies, which demonstrates that the protein moieties of RNPs still preserve (at least partially) their native organization. This phenomenon shares extensive similarity with the segregation and clustering of nuclear RNPs occurring during spontaneous apoptosis of rat thymocytes and in several other cell models in which transcription is physiologically arrested.
Nuclear phospholipids in human lymphocytes activated by phytohemagglutinin.
Using a specific ultracytochemical technique, the labelling with phospholipase A2-gold complex, we have followed nuclear phospholipids (PL) along the G1 phase in human lymphocytes activated by PHA. Our data point out two main results relating nuclear PL to the transcriptional activity, characteristic of the G1 phase, during which many different molecules necessary both for progression through G1 and for the start of S phase are synthesized. PL quantitative changes parallel those of hnRNPs and snRNPs, which are markers of the levels of transcriptional activity and processing. We found that nuclei of G0 lymphocytes, with a very low transcription level, are poor of PL as well as of RNPs. The amount of PL increases in activated lymphocytes, along all G1, until the beginning of S phase. At the same time, hnRNPs and snRNPs strongly increase and maintain higher levels than in control cells, till the beginning of S phase. PL are localized on nuclear structures where also RNPs involved in transcription and splicing, are located, i. e. perichromatin fibrils, interchromatin granules and the dense fibrillar component of the nucleolus. Since it is known that during S phase nuclear PL decrease, while both the enzyme activities related to their breakdown and their hydrolysis products increase, PL seem to be involved in the generation of signal molecules triggering DNA replication. We suggest that PL in the nucleus can be involved in multiple functions, depending on the phase of the cell cycle.
Restructuring and extrusion of nuclear ribonucleoproteins (RNPs) during apoptosis.
To investigate the fate of nuclear ribonucleoprotein (RNP) during apoptosis, we performed a cytochemical and immunocytochemical study of apoptotic mammalian cells by fluorescence and electron microscopy using specific antibodies which recognize different RNP-associated proteins. Light and electron microscopy showed that during apoptosis nuclear RNPs are rearranged, with the formation of fibrogranular heterogeneous clusters which are extruded from the nucleus into the cytoplasm, and finally released at the cell surface, as apoptotic blebs. Restructuring and extrusion of nuclear RNPs apparently determine the arrest of RNP maturation, thus effectively blocking protein synthesis in apoptotic cells.
Fine structural specific visualization of RNA on ultrathin sections.
We describe a new technique that allows specific visualization of RNA at the electron microscopic level by means of terbium citrate. Under the conditions presented here, terbium binds selectively to RNA and stains nucleoli, interchromatin granules, peri-chromatin fibrils, perichromatin granules, and coiled bodies in the cell nucleus, whereas ribosomes are the only contrasted structures in the cytoplasm. All the cell components contrasted by terbium are known to contain RNA. When ultrathin sections are pretreated with RNase A or nuclease S1 (specific for single-stranded nucleic acids), staining does not occur. Neither DNase nor pronase influences the reaction. We conclude that terbium staining is selective for RNA and especially for single-stranded RNA. The staining can be performed on thin sections of material embedded both in epoxy and in acrylic resins. The technique is not influenced by the aldehyde fixative used and can also be utilized after immunolabeling. The endproduct is very fine and, although weak in contrast, is suitable for high-resolution observations.
Nuclear RNA is extruded from apoptotic cells.
During spontaneous apoptosis of thymocytes there is extrusion of ribonucleoproteins (RNPs) from the cell. The aim of this investigation was to elucidate whether the RNP aggregates in apoptotic cells and bodies still contain RNA in an appreciable amount. We demonstrated by specific cytochemical techniques that the aggregates of nuclear RNPs extruded in the cytoplasm of spontaneously apoptotic thymocytes contain RNA in a sufficient amount to be detected cytochemically. These heterogeneous ectopic RNP-derived structures (HERDS) are formed by perichromatin fibrils, interchromatin granules, perichromatin granules, and nucleolar material. The RNA detected inside these clusters should therefore correspond to both mRNA and snRNA as well as to rRNA. We never observed DNA-containing aggregates in the cytoplasm of apoptotic thymocytes. The presence of RNA in the HERDS that may be released from apoptotic cells suggests that the decrease in the amount of total RNA during apoptosis may be mostly linked to cellular extrusion rather than to degradation of RNA by RNase activities. Another interesting aspect of these results lies in the hypothesis of apoptosis as a possible cause for the presence of autoantibodies in the serum of patients with systemic autoimmune diseases.
Still immunodetectable nuclear RNPs are extruded from the cytoplasm of spontaneously apoptotic thymocytes.
The fate of different nuclear ribonucleoprotein (RNP) components was investigated during spontaneous apoptosis of thymocytes using specific monoclonal antibodies against snRNPs, hnRNPs, and ribosomal proteins at light and electron microscopy levels and by flow cytometry. It was found that, during apoptosis, nuclear RNP-containing structures (perichromatin granules, interchromatin granules, and perichromatin fibrils) segregate in the interchromatin space and cluster into heterogeneous aggregates of granules in which some of the structures may still be recognized morphologically. Along with the progress of apoptosis, the clusters are extruded from the nucleus into the cytoplasm, from which they are finally released via cytoplasmic extrusions. At all these stages, RNPs inside the clusters are always recognized by specific antibodies, even when they bleb out of the cell surface, thus suggesting that degradation of RNPs might be only partial during apoptosis. This could be potentially harmful in genetically susceptible subjects, as the appropriate MHC class II molecules may capture and present normally cryptic self-peptides. It is tempting to speculate that this event might have implications in the etiology of autoimmune diseases.
Nuclear ribonucleoprotein-containing structures undergo severe rearrangement during spontaneous thymocyte apoptosis. A morphological study by electron microscopy.
The rearrangement of nuclear ribonucleoprotein (RNP)-containing structures during spontaneous thymocyte apoptosis has been investigated by electron microscopy. Along with chromatin margination and condensation. RNPs segregate into the central portion of the nucleus, in the form of heterogeneous clusters of granules which contain interchromatin and perichromatin granules, perichromatin fibrils, nucleolar components, and probably coiled bodies. In parallel with progressive chromatin condensation and karyorrhexis, granule clusters are then extruded into the cytoplasm and are finally released at the cell surface as membrane-bound cytoplasmic debris, sometimes in association with apparently undamaged organelles such as centrioles. It is likely that this RNP segregation may correlate with a severe impairment of protein synthesis. A similar phenomenon was observed in elongating spermatids, when transcriptional arrest is induced during the process of reversible silencing of the male genome. It may be hypothesized that segregation into heterogeneous granule clusters could be a common mechanism to remove redundant RNP-containing structures from the cell.
Detection of apoptotic cells by annexin V labeling at electron microscopy.
Annexin V is a Ca(++)-binding protein which is widely used as a marker for apoptotic cells, as it binds to the phosphatidylserine residues exposed at the surface of apoptotic cells. In this paper, we describe a method for the immunogold-labeling of biotin-conjugated Annexin V, to detect apoptotic thymocytes at electron microscopy. Etoposide-treated thymocytes were reacted in tissue culture medium with biotin-conjugated Annexin V, fixed with glutaraldehyde, and processed for resin embedding; thin sections were incubated with antibiotin antibodies coupled with colloidal gold. Cytometric estimates of the apoptotic index were also performed by evaluating either the DNA content after propidium iodide staining or the light-scattering values, as well as the positivity for fluorescein isothiocyanate-conjugated anti-biotin antibodies. At electron microscopy, gold-labeling of Annexin V was located on the plasma membrane only of apoptotic thymocytes and on cytoplasmic debris, likely resulting from the typical apoptotic blebbing. Unlabeled thymocytes always showed normal, non-apoptotic nuclear morphology. The application of Annexin V labeling at electron microscopy will allow a more refined description of the morphological events occurring during apoptosis.