22 research outputs found

    Mammalian Sperm Head Formation Involves Different Polarization of Two Novel LINC Complexes

    Get PDF
    Background: LINC complexes are nuclear envelope bridging protein structures formed by interaction of SUN and KASH proteins. They physically connect the nucleus with the peripheral cytoskeleton and are critically involved in a variety of dynamic processes, such as nuclear anchorage, movement and positioning and meiotic chromosome dynamics. Moreover, they are shown to be essential for maintaining nuclear shape. Findings: Based on detailed expression analysis and biochemical approaches, we show here that during mouse sperm development, a terminal cell differentiation process characterized by profound morphogenic restructuring, two novel distinctive LINC complexes are established. They consist either of spermiogenesis-specific Sun3 and Nesprin1 or Sun1g, a novel non-nuclear Sun1 isoform, and Nesprin3. We could find that these two LINC complexes specifically polarize to opposite spermatid poles likely linking to sperm-specific cytoskeletal structures. Although, as shown in co-transfection/ immunoprecipitation experiments, SUN proteins appear to arbitrarily interact with various KASH partners, our study demonstrates that they actually are able to confine their binding to form distinct LINC complexes. Conclusions: Formation of the mammalian sperm head involves assembly and different polarization of two novel spermiogenesis-specific LINC complexes. Together, our findings suggest that theses LINC complexes connect the differentiating spermatid nucleus to surrounding cytoskeletal structures to enable its well-directed shaping and elongation

    The nuclear envelope in germ cells: structural peculiarities, dynamic processes und the reorganization of the cell nucleus during murine spermatogenesis

    No full text
    Die Kernhülle umgibt als geschlossenes Membransystem einen jeden Zellkern und ist damit ein gemeinsames Merkmal aller eukaryotischen Zellen. Sie besteht aus einer inneren und einer äußeren Kernmembran sowie der nukleoplasmatischen Kernlamina, die aufgrund zahlreicher assoziierter Proteine in enger Wechselbeziehung mit der inneren Kernmembran steht. Neben der rein räumlichen Trennung nukleärer und zytoplasmatischer Strukturen hat die Kernhülle bedeutenden regulatorischen Einfluss auf die gesamte Zelle. So ist sie unter anderem an der Steuerung der genomischen Aktivität, an der nukleo- und zytoplasmatischen Signalübertragung und in hohem Maße an der Positionierung und Formerhaltung des Zellkerns beteiligt. Es mehren sich die Hinweise, dass die Kernhülle auch während der Gametogenese, der Differenzierung befruchtungsfähiger Keimzellen, eine zentrale Rolle einnimmt und folglich auch mit bislang ungeklärten Ursachen humaner Infertilität in Kontext stehen könnte. Um die Bedeutung der Kernhülle für die Keimbahn der Säuger generell besser verstehen zu können, wurden in dieser Arbeit ausgewählte Bestandteile der Keimzellkernhülle untersucht. Dadurch sollte der Kenntnisstand erweitert werden, in welcher Weise die Kernhülle dynamische, morphologische und vor allem für die Keimbahn essentielle Prozesse beeinflusst; insbesondere während der meiotischen und der postmeiotischen Differenzierungsphase bei männlichen Mäusen. Im Mittelpunkt stand dabei einerseits Lamin C2, ein meiosespezifisches A-Typ Lamin, dessen Verlust zu einer schwer geschädigten Meiose und infolgedessen zu vollständiger männlicher Infertilität führt. Es zeigte sich, dass Lamin C2-defiziente männliche Mäuse schwerwiegende Defekte bei der Paarung und Synapsis der homologen Chromosomen in der meiotischen Prophase I aufweisen und aufgrund apoptotischer Spermatocyten keine reifen Spermien bilden können. Es wird angenommen, dass die Assoziation homologer Chromosomen bzw. die Abstoßung nicht-homologer durch gerichtete Telomerbewegungen entlang der Kernhüllenperipherie vorangetrieben bzw. verhindert wird. Da Lamin C2 seinerseits diese Wanderung der Telomere durch eine Flexibilisierung der Spermatocytenkernhülle vereinfachen soll, ist es durchaus vorstellbar, dass sein Verlust verlangsamte Telomerbewegungen, eine gestörte Homologenfindung und folglich Fehlpaarungen zur Folge hat. Ein weiteres zentrales Thema war die Erforschung potentieller LINC-Komplexe während der Differenzierungs- und morphologischen Umgestaltungsphase postmeiotischer Keimzellen. LINC-Komplexe sind kernhüllendurchspannende Proteingebilde aus SUN-Proteinen in der inneren und Nesprinen in der äußeren Kernmembran, die nukleäre Strukturen an das Zytoskelett binden. Da sie aufgrund dieser strukturellen Eigenschaft die Kernmorphologie beeinflussen können, erscheinen sie als äußerst geeignet, an der Formierung des Spermienkopfes beteiligt zu sein. Die detaillierte Untersuchung spermiogeneserelevanter LINC-Komplex-Bestandteile ergab, dass während der Spermiogenese tatsächlich zwei neue, strukturell einzigartige LINC-Komplexe gebildet werden, die darüber hinaus auf den entgegengesetzten Seiten differenzierender Spermatiden polarisieren. Da sie den Kern dort an jeweils spezielle Zytoskelettelemente binden könnten, wurde in dieser Arbeit das Modell der LINC-Komplex vermittelten Umformung des Spermienkopfes aufgestellt. Insgesamt trägt diese Arbeit durch die funktionelle Analyse von Lamin C2 und die Identifizierung neuer LINC-Komplexe dazu bei, die Wichtigkeit der Kernhülle für die Spermatogenese zu vertiefen und auszuweiten.The nuclear envelope is a double membranous structure enclosing the most typical eukaryotic feature, the cell nucleus. It is composed of an inner and an outer nuclear membrane as well as a nucleoplasmic lamina which is closely connected to the inner nuclear membrane by a number of associated proteins. Thus, besides just separating nuclear and cytoplasmic structures the nuclear envelope is functionally involved in many regulatory processes; i.e. controlling of the genomic activity, nucleo- and cytoplasmic signal transduction and, importantly, nuclear positioning and maintenance of nuclear architecture. Evidence emerges that the nuclear envelope also plays a fundamental role in the differentiation process of germ cells, gametogenesis, likely being responsible for yet unexplained human infertility. In order to expand the knowledge concerning impact and functions of the nuclear envelope for the mammalian germ line selected components and special characteristics of the germ cell nuclear envelope have been investigated in this thesis. Thus, this might help to understand germ line specific dynamic, morphological and other essential processes - particularly in course of meiotic and postmeiotic differentiation in male mice. Of great interest was lamin C2, a meiosis-specific A-type lamin essential for accurate meiosis and fertility of male mice. It has been shown that the targeted depletion of lamin C2 results in a severely defective meiosis and consequently in complete male infertility. Lamin C2-deficient male mice exhibit serious defects concerning pairing and synapsis of the homologous chromosomes. Thus, these mice are characterized by apoptotic spermatocytes and the complete absence of postmeiotic stages. It has been proposed that telomere movements along the nuclear periphery during prophase I might promote homologous but prevent heterologous chromosome association. Lamin C2 in turn is suggested to facilitate those meiotic telomere migrations by providing local flexibility to the telomeres attached to the nuclear envelope. Given that loss of lamin C2 causes decelerated telomere movements and defective homologous pairing afterwards, the situation in lamin C2-deficient spermatocytes could be explained. Another central focus was the investigation of potential LINC complexes in differentiating and morphologically reorganizing postmeiotic cells. LINC complexes are proteinaceous structures formed by SUN-proteins at the inner and nesprins at the outer nuclear membrane that tether the cell nucleus to the surrounding cytoskeleton. Since this structural property is suggested to influence nuclear morphology and shaping, LINC complexes appear to be good candidates for participating in mammalian sperm head shaping. Detailed analysis of LINC complex components relevant for spermiogenesis revealed that two novel uniquely assembled LINC complexes are established in the male post meiotic germ line. Moreover, those LINC complexes were shown to polarize to opposite cell poles in differentiating spermatids probably linking to specialized cytoskeletal elements. Therefore, a model for the LINC complex mediated shaping and elongation of the mammalian sperm head has been proposed in this thesis. Together, the functional analysis of lamin C2 as well as the identification of novel LINC complexes described in this thesis substantiates the fundamental role of the nuclear envelope for entire spermatogenesis

    Expression of individual mammalian Sun1 isoforms depends on the cell type

    Get PDF
    Mammalian Sun1 belongs to an evolutionarily conserved family of inner nuclear membrane proteins, which are known as SUN domain proteins. SUN domain proteins interact with KASH domain partners to form bridging complexes, so-called LINC complexes, that physically connect the nuclear interior to the cytoskeleton. LINC complexes are critical for nuclear integrity and play fundamental roles in nuclear positioning, shaping and movement. The mammalian genome codes for at least five different SUN domain proteins used for the formation of a number of different LINC complexes. Recently, we reported on the identification of several Sun1 isoforms, which tremendously enlarges the alternatives to form functional LINC complexes. We now confirmed that Sun1 actually exists in at least seven distinct splice variants. Besides that, we observed that expression of individual Sun1 isoforms remarkably depends on the cell type, suggesting a cell type-specific adaption of Sun1 dependent LINC complexes to specific cellular and physiological requirements

    The Meiotic Nuclear Lamina Regulates Chromosome Dynamics and Promotes Efficient Homologous Recombination in the Mouse

    Get PDF
    The nuclear lamina is the structural scaffold of the nuclear envelope and is well known for its central role in nuclear organization and maintaining nuclear stability and shape. In the past, a number of severe human disorders have been identified to be associated with mutations in lamins. Extensive research on this topic has provided novel important clues about nuclear lamina function. These studies have contributed to the knowledge that the lamina constitutes a complex multifunctional platform combining both structural and regulatory functions. Here, we report that, in addition to the previously demonstrated significance for somatic cell differentiation and maintenance, the nuclear lamina is also an essential determinant for germ cell development. Both male and female mice lacking the short meiosis-specific A-type lamin C2 have a severely defective meiosis, which at least in the male results in infertility. Detailed analysis revealed that lamin C2 is required for telomere-driven dynamic repositioning of meiotic chromosomes. Loss of lamin C2 affects precise synapsis of the homologs and interferes with meiotic double-strand break repair. Taken together, our data explain how the nuclear lamina contributes to meiotic chromosome behaviour and accurate genome haploidization on a mechanistic level

    Analysis of Meiosis in SUN1 Deficient Mice Reveals a Distinct Role of SUN2 in Mammalian Meiotic LINC Complex Formation and Function

    Get PDF
    LINC complexes are evolutionarily conserved nuclear envelope bridges, composed of SUN (Sad-1/UNC-84) and KASH (Klarsicht/ANC-1/Syne/homology) domain proteins. They are crucial for nuclear positioning and nuclear shape determination, and also mediate nuclear envelope (NE) attachment of meiotic telomeres, essential for driving homolog synapsis and recombination. In mice, SUN1 and SUN2 are the only SUN domain proteins expressed during meiosis, sharing their localization with meiosis-specific KASH5. Recent studies have shown that loss of SUN1 severely interferes with meiotic processes. Absence of SUN1 provokes defective telomere attachment and causes infertility. Here, we report that meiotic telomere attachment is not entirely lost in mice deficient for SUN1, but numerous telomeres are still attached to the NE through SUN2/KASH5-LINC complexes. In Sun12/2 meiocytes attached telomeres retained the capacity to form bouquetlike clusters. Furthermore, we could detect significant numbers of late meiotic recombination events in Sun12/2 mice. Together, this indicates that even in the absence of SUN1 telomere attachment and their movement within the nuclear envelope per se can be functional. Author summary: Correct genome haploidization during meiosis requires tightly regulated chromosome movements that follow a highly conserved choreography during prophase I. Errors in these movements cause subsequent meiotic defects, which typically lead to infertility. At the beginning of meiotic prophase, chromosome ends are tethered to the nuclear envelope (NE). This attachment of telomeres appears to be mediated by well-conserved membrane spanning protein complexes within the NE (LINC complexes). In mouse meiosis, the two main LINC components SUN1 and SUN2 were independently described to localize at the sites of telomere attachment. While SUN1 has been demonstrated to be critical for meiotic telomere attachment, the precise role of SUN2 in this context, however, has been discussed controversially in the field. Our current study was targeted to determine the factual capacity of SUN2 in telomere attachment and chromosome movements in SUN1 deficient mice. Remarkably, although telomere attachment is impaired in the absence of SUN1, we could find a yet undescribed SUN1-independent telomere attachment, which presumably is mediated by SUN2 and KASH5. This SUN2 mediated telomere attachment is stable throughout prophase I and functional in moving telomeres within the NE. Thus, our results clearly indicate that SUN1 and SUN2, at least partially, fulfill redundant meiotic functions

    Early microvascular dysfunction in cerebral small vessel disease is not detectable on 3.0 Tesla magnetic resonance imaging: a longitudinal study in spontaneously hypertensive stroke-prone rats

    Get PDF
    Background Human cerebral small vessel disease (CSVD) has distinct histopathologic and imaging findings in its advanced stages. In spontaneously hypertensive stroke-prone rats (SHRSP), a well-established animal model of CSVD, we recently demonstrated that cerebral microangiopathy is initiated by early microvascular dysfunction leading to the breakdown of the blood–brain barrier and an activated coagulatory state resulting in capillary and arteriolar erythrocyte accumulations (stases). In the present study, we investigated whether initial microvascular dysfunction and other stages of the pathologic CSVD cascade can be detected by serial magnetic resonance imaging (MRI). Findings Fourteen SHRSP and three control (Wistar) rats (aged 26–44 weeks) were investigated biweekly by 3.0 Tesla (3 T) MRI. After perfusion, brains were stained with hematoxylin–eosin and histology was correlated with MRI data. Three SHRSP developed terminal CSVD stages including cortical, hippocampal, and striatal infarcts and macrohemorrhages, which could be detected consistently by MRI. Corresponding histology showed small vessel thromboses and increased numbers of small perivascular bleeds in the infarcted areas. However, 3 T MRI failed to visualize intravascular erythrocyte accumulations, even in those brain regions with the highest densities of affected vessels and the largest vessels affected by stases, as well as failing to detect small perivascular bleeds. Conclusion Serial MRI at a field strength of 3 T failed to detect the initial microvascular dysfunction and subsequent small perivascular bleeds in SHRSP; only terminal stages of cerebral microangiopathy were reliably detected. Further investigations at higher magnetic field strengths (7 T) using blood- and flow-sensitive sequences are currently underway

    Ischemia-induced cell depolarization: does the hyperpolarization-activated cation channel HCN2 affect the outcome after stroke in mice?

    Get PDF
    Background Brain ischemia is known to include neuronal cell death and persisting neurological deficits. A lack of oxygen and glucose are considered to be key mediators of ischemic neurodegeneration while the exact mechanisms are yet unclear. In former studies the expression of two different two-pore domain potassium (K2P)(K_{2P}) channels (TASK1, TREK1) were shown to ameliorate neuronal damage due to cerebral ischemia. In neurons, TASK channels carrying hyperpolarizing K+K^+ leak currents, and the pacemaker channel HCN2, carrying depolarizing Ih, stabilize the membrane potential by a mutual functional interaction. It is assumed that this ionic interplay between TASK and HCN2 channels enhances the resistance of neurons to insults accompanied by extracellular pH shifts. Methods In C57Bl/6 (wildtype, WT), hcn2+/+hcn2^{+/+} and hcn2/hcn2^{-/-} mice we used an in vivo model of cerebral ischemia (transient middle cerebral artery occlusion (tMCAO)) to depict a functional impact of HCN2 in stroke formation. Subsequent analyses comprise behavioural tests and hcn2 gene expression assays. Results After 60 min of tMCAO induction in WT mice, we collected tissue samples at 6, 12, and 24 h after reperfusion. In the infarcted neocortex, hcn2 expression analyses revealed a nominal peak of hcn2 expression 6 h after reperfusion with a tendency towards lower expression levels with longer reperfusion times. Hcn2 gene expression levels in infarcted basal ganglia did not change after 6 h and 12 h. Only at 24 h after reperfusion, hcn2 expression significantly decreases by ~55%. However, 30 min of tMCAO in hcn2-/- as well as hcn2+/+ littermates induced similar infarct volumes. Behavioural tests for global neurological function (Bederson score) and motor function/coordination (grip test) were performed at day 1 after surgery. Again, we found no differences between the groups. Conclusions Here, we hypothesized that the absence of HCN2, an important functional counter player of TASK channels, affects neuronal survival during stroke-induced tissue damage. However, together with a former study on TASK3 these results implicate that both TASK3 and HCN2 which were supposed to be neuroprotective due to their pH-dependency, do not influence ischemic neurodegeneration during stroke in the tMCAO model

    Generation of a humanized FXII knock-in mouse-A powerful model system to test novel anti-thrombotic agents

    No full text
    Background Effective inhibition of thrombosis without generating bleeding risks is a major challenge in medicine. Accumulating evidence suggests that this can be achieved by inhibition of coagulation factor XII (FXII), as either its knock-out or inhibition in animal models efficiently reduced thrombosis without affecting normal hemostasis. Based on these findings, highly specific inhibitors for human FXII(a) are under development. However, currently, in vivo studies on their efficacy and safety are impeded by the lack of an optimized animal model expressing the specific target, that is, human FXII. Objective The primary objective of this study is to develop and functionally characterize a humanized FXII mouse model. Methods A humanized FXII mouse model was generated by replacing the murine with the human F12 gene (genetic knock-in) and tested it in in vitro coagulation assays and in in vivo thrombosis models. Results These hF12KI^{KI} mice were indistinguishable from wild-type mice in all tested assays of coagulation and platelet function in vitro and in vivo, except for reduced expression levels of hFXII compared to human plasma. Targeting FXII by the anti-human FXIIa antibody 3F7 increased activated partial thromboplastin time dose-dependently and protected hF12KI^{KI} mice in an arterial thrombosis model without affecting bleeding times. Conclusion These data establish the newly generated hF12KI^{KI} mouse as a powerful and unique model system for in vivo studies on anti-FXII(a) biologics, supporting the development of efficient and safe human FXII(a) inhibitors

    Defective synapsis of the homologous chromosomes in <i>lamin C2<sup>−/−</sup></i> meiocytes.

    No full text
    <p>Representative chromosome spreads of spermatocytes (A) and oocytes (17.5 dpf) (B) labelled with anti-SYCP3 and anti-SYCP1 antibodies. Heterologous associations (red box in A′) are observed in <i>lamin C2<sup>−/−</sup></i> spermatocytes only. Incomplete pairing of homologs (white boxes in A′ and B′) as well as univalent chromosomes (arrowheads in A″,A′″ and B″) occur in both <i>lamin C2<sup>−/−</sup></i> spermatocytes and oocytes. <i>Lamin C2<sup>−/−</sup></i> spermatocytes also display cells with X and Y chromosomes as the only univalents (arrowheads in A′″) or with linear telomere-telomere associations between non-homologous chromosomes (arrow in A″″). Scale bars 10 µm. (C) Quantification of meiocytes with defective synapsis in <i>lamin C2<sup>−/−</sup></i> males and females. For both sexes, differences between mutants and controls are highly significant (Pearson's Chi<sup>2</sup> test p-value<0.0001 each) (D) Synaptic pairing defects in males were further categorised and quantified. Interestingly, sex chromosomes were univalent in the vast majority of mutant spermatocytes. See text for further discussion.</p
    corecore