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Mitochondrial and nuclear DNA defects in Saccharomyces cerevisiae with mutations in DNA polymerase gamma associated with progressive external ophthalmoplegia.

A number of nuclear mutations have been identified in a variety of mitochondrial diseases including progressive external ophthalmoplegia (PEO), Alpers syndrome and other neuromuscular and oxidative phosphorylation defects. More than 50 mutations have been identified in POLG, which encodes the human mitochondrial DNA (mtDNA) polymerase gamma, PEO and Alpers patients. To rapidly characterize the effects of these mutations, we have developed a versatile system that enables the consequences of homologous mutations, introduced in situ into the yeast mtDNA polymerase gene MIP1, to be evaluated in vivo in haploid and diploid cells. Overall, distinct phenotypes for expression of each of the mip1-PEO mutations were observed, including respiration-defective cells with decreased viability, dominant-negative mutant polymerases, elevated levels of mitochondrial and nuclear DNA damage and chromosomal mutations. Mutations in the polymerase domain caused the most severe phenotype accompanied by loss of mtDNA and cell viability, whereas the mutation in the exonuclease domain showed mild dominance with loss of mtDNA. Interestingly, the linker region mutation caused elevated mitochondrial and nuclear DNA damage. The cellular processes contributing to these observations in the mutant yeast cells are potentially relevant to understanding the pathologies observed in human mitochondrial disease patients.

Amino Acid Sequence↗

Mitochondrial myopathies.

PURPOSE OF REVIEW: Our understanding of mitochondrial diseases (defined restrictively as defects of the mitochondrial respiratory chain) is expanding rapidly. In this review, I will give the latest information on disorders affecting predominantly or exclusively skeletal muscle. RECENT FINDINGS: The most recently described mitochondrial myopathies are due to defects in nuclear DNA, including coenzyme Q10 deficiency and mutations in genes controlling mitochondrial DNA abundance and structure, such as POLG, TK2, and MPV17. Barth syndrome, an X-linked recessive mitochondrial myopathy/cardiopathy, is associated with decreased amount and altered structure of cardiolipin, the main phospholipid of the inner mitochondrial membrane, but a secondary impairment of respiratory chain function is plausible. The role of mutations in protein-coding genes of mitochondrial DNA in causing isolated myopathies has been confirmed. Mutations in tRNA genes of mitochondrial DNA can also cause predominantly myopathic syndromes and--contrary to conventional wisdom--these mutations can be homoplasmic. SUMMARY: Defects in the mitochondrial respiratory chain impair energy production and almost invariably involve skeletal muscle, causing exercise intolerance, cramps, recurrent myoglobinuria, or fixed weakness, which often affects extraocular muscles and results in droopy eyelids (ptosis) and progressive external ophthalmoplegia.

Cell Nucleus↗

The expanding phenotype of mitochondrial myopathy.

PURPOSE OF REVIEW: Our understanding of mitochondrial diseases (defined restrictively as defects in the mitochondrial respiratory chain) continues to progress apace. In this review we provide an update of information regarding disorders that predominantly or exclusively affect skeletal muscle. RECENT FINDINGS: Most recently described mitochondrial myopathies are due to defects in nuclear DNA, including coenzyme Q10 deficiency, and mutations in genes that control mitochondrial DNA (mtDNA) abundance and structure such as POLG and TK2. Barth syndrome, an X-linked recessive mitochondrial myopathy/cardiopathy, is associated with altered lipid composition of the inner mitochondrial membrane, but a putative secondary impairment of the respiratory chain remains to be documented. Concerning the 'other genome', the role played by mutations in protein encoding genes of mtDNA in causing isolated myopathies has been confirmed. It has also been confirmed that mutations in tRNA genes of mtDNA can cause predominantly myopathic syndromes and - contrary to conventional wisdom - these mutations can be homoplasmic. SUMMARY: Defects in the mitochondrial respiratory chain impair energy production and almost invariably involve skeletal muscle, causing exercise intolerance, myalgia, cramps, or fixed weakness, which often affects extraocular muscles and results in droopy eyelids (ptosis) and progressive external ophthalmoplegia.

DNA, Mitochondrial↗

Mitochondrial DNA mutations, oxidative stress, and apoptosis in mammalian aging.

Mutations in mitochondrial DNA (mtDNA) accumulate in tissues of mammalian species and have been hypothesized to contribute to aging. We show that mice expressing a proofreading-deficient version of the mitochondrial DNA polymerase g (POLG) accumulate mtDNA mutations and display features of accelerated aging. Accumulation of mtDNA mutations was not associated with increased markers of oxidative stress or a defect in cellular proliferation, but was correlated with the induction of apoptotic markers, particularly in tissues characterized by rapid cellular turnover. The levels of apoptotic markers were also found to increase during aging in normal mice. Thus, accumulation of mtDNA mutations that promote apoptosis may be a central mechanism driving mammalian aging.

Aging↗

A novel missense adenine nucleotide translocator-1 gene mutation in a Greek adPEO family.

Autosomal dominant progressive external ophthalmoplegia (adPEO) is caused by mutations in at least three different genes: ANT1 (chromosome 4q34-35), TWINKLE, and POLG. The ANT1 gene encodes the adenine nucleotide translocator-1 (ANT1). We identified a heterozygous T293C mutation of the ANT1 gene in a Greek family with adPEO. The resulting leucine to proline substitution likely modifies the secondary structure of the ANT1 protein. ANT1 gene mutations may account for adPEO in families with different ethnic backgrounds.

Adenine Nucleotide Translocator 1↗

Molecular genetics of human male infertility: from genes to new therapeutic perspectives.

Genetic lesions causing human male infertility are manifold. Besides gross chromosomal aneuploidies and rearrangements, microdeletions and single gene defects can interfere with male fertility. Male fertility is not only dependent on genes controlling the male germ line but also on genes of the networks functional for male gonad development and male somatic development, respectively. It is popular to unravel these netweorks with mouse gene knock-out mutants displaying reproductive defects. However, substantial arguments can be given for more functional studies directly on the human genes, because multiple reproductive proteins evolve quickly most likely for adopting to the specific needs of the species class. Prominent examples are mutations of the FSHR gene causing different pathologies in mouse and human and the DAZ gene family not found in the mouse genome but in the human genome with an essential male fertility function. Therefore this review is focussed on a comprehensive overview of human genes known with mutations causing male infertility (AR; AZF gene families; CFTR, DM-1, DNAH gene family, FGFR1, FSHR, INSL3, KAL-1, LGR8- GREAT, LHR, POLG). Then some human genes are described well recognised as functional in spermatogenesis and male fertility although gene specific mutations causing infertility were not yet identified (CREM, CDY1, DAZL1, PHGPx, PRM-1, PRM-2). They are designated as "spermatogenesis phase marker" or "male fertility index" genes, because they are useful tools for diagnosing the patient's spermatogenesis disruption phase and for predicting the presence and quality of his mature sperms. Current therapeutic protocols for human male infertility do usually not cure the specific gene defect but try to bypass it using Artificial Reproductive Technology (ART). Putative imprinting defects in the early embryo probably associated with the used ART protocol and an increase of chromosome abnormalities in the ART offspring now strongly asks for a significant improvement of this outcome requesting urgently more basic research on the genes functioning in the human male germ line and during early human embryogenesis.

Animals↗

Sex-Sorting mammalian sperm: concept to application in animals.

Sperm sexing can be used to produce sexed offspring with 85%-95% accuracy (Amann, 1999; Johnson and Seidel, 1999; Seidel et al 1999a). On September 1, 2000, the sale of sexed bovine sperm commented in the United Kingdom. It will be interesting to see to what degree sexed sperm penetrate the semen market. This verified sexed product sets the stage for commercialization around the world in major animal producing countries. This commercialization of sexed sperm occurred nearly 20 years after technology for accurately determining the proportion of X and Y sperm in semen was first developed at Lawrence Livermore National Laboratory. It came about due to advances in both the hardware and the software componenets of computer science, biophysic, cell biology and applied reproductive physiology plus efforts of innovative scientist. Many individuals have contributed in making semen sexing in animals a commercial reality since the research team of Bart Gledhill, Dan Pinkel, Duane Garner, Susan Lake, and Larry Johnson began following up on the first flow cytometric studies on human sperm by Friedrich Otto, Wolfgang Göhde, and Marvin Meistrich. There was also major input from personnel at USDA Beltsville Agricultural Research Center as well as scientists at Cambridge University, Atlantic Breeders Cooperative, Colorado State University and XY Inc. These include Chuck Allen, Rupert Amann, David Cran, Patrick Doyle, Mike Evans, Lisa Herickhoff, Mervyn Jacobson, Kehuan Lu, Chris Polge, Wim Rens, John Schenk, George Seidel, Glenn Welch, and many others.

Animals↗

[Mitochondrial dysfunction in bipolar disorder].

Phosphorus magnetic resonance spectroscopic studies in bipolar disorder revealed altered brain energy metabolism resembling that of chronic progressive external ophthalmoplegia (CPEO). Mood disorder is one characteristic symptom in several families of CPEO caused by mutations of three genes, ANT1, Twinkle, and POLG. Molecular genetic analysis revealed association of bipolar disorder with mitochondrial DNA (mtDNA) 10398A polymorphism, 3644C mutation, and FDUFV2. In the postmortem brains, increased levels of mtDNA 4977bp deletion and 3243G mutation, and altered expression of mitochondria-related genes were reported. Mitochondria play an important role in neuroplasticity and apoptotic signaling via regulating intracellular calcium homeostasis. Thus, mitochondrial dysfunction may cause altered calcium homeostasis and neuroplasticity, resulting in bipolar disorder. Most molecular genetic findings in bipolar disorder regarding mitochondria and endoplasmic reticulum stress signaling are common to Parkinson's disease and diabetes mellitus. Thus, it is possible that bipolar disorder is also a disease caused by the progressive loss of some neuronal cells.

Bipolar Disorder↗

Biochemical and functional aspects of recovery of mammalian systems from deep sub-zero temperatures.

The viability of isolated mammalian systems is, apart from possible morphological changes, essentially conditioned by the biochemical modifications from normal physiological conditions to an artificial environment where blood supply is interrupted leading to ischaemia and where the temperature is lowered. In order to survive freezing and thawing, mammalian systems have to be protected by cryoprotectants, which apart from some inherent toxicity, may also interact with vital metabolic mechanisms (Conover, 1969, 1975: Fahy, 1986: Fahy et al. 1984: Jacobs & Herschler, 1986: Karow, 1982: Penninckx et al. 198 3: Polge et al. 1949: Rowe et al. 1980: Schlafer, 1981: Taylor & Pignat, 1982). Cellular volume changes as a result of modifications in extra- a and intracellular osmolality occurring during freezing and thawing prove particularly detrimental to the normal functioning of the cellular membranes (Crowe et al. 1983: Farrant, 1980: Farrant et al. 1977b: Karow, 198 2: Mazur & Rigopoulos, 1983: Meryman, 1970: Meryman et al. 1977: Nei, 19 76: Santarius & Giersch, 1983). Furthermore intracellular ice formation enhances structural and metabolic injury to subcellular particles(Farrant et al. 1977a: Fink, 1986: Fishb ein & Griffin, 1976: Fujikawa, 1981: Fuller & De Loecker, 1985: Lazarus et al. 1982: Malinin, 1972: Mazur, 1984: Pavlock et al. 1984:Penninckx et al. 1984: Persidsky & Ellet, 1971: Rubinacci et al. 1986: Shikama, 1965: Steponkus & Wiest, 1979: Strauss & Ingenito, 1980: Takehara & Rowe, 1971: Tamiya et al. 1985). Even with the protection of structural integrity, the preservation of energy production and the maintenance of the specific intracellular medium are essential to secure viability (Pegg, 1981).

Animals↗

Neurohormonal stimulation of histamine release from neuroendocrine cells of the human adenomatous prostate.

BACKGROUND: Neuroendocrine cells (NE) constitute a population of highly specialized cells in prostatic glands; histamine has never been described in these cells. This article shows the presence and the regulation of release of histamine in NE. METHODS: In 21 prostatic adenomas, NE were identified by specific antisera against neuroendocrine markers (chromogranin-A, synaptophysin), histamine, and histidine decarboxylase (HDC); a rate HDC-cDNA probe was used to detect this enzyme by in situ hybridization. RESULTS: Immunoreactive cells for chromogranin-A, histamine, and HDC were found among luminal epithelial glandular cells. Similar cells were also labeled with the HDC-cDNA probe. Glandular cells, isolated from prostatic adenomas, were shown to contain histamine (7-40 pmol/mg cellular protein). L(-) norepinephrine causes a time-dependent (t1/2 = 22 min) histamine release; the alpha 1-receptor antagonists WB-4101 and YM-617 specifically inhibited this release, in agreement with a mediation by alpha 1-adrenoreceptor subtype. CONCLUSIONS: There is some evidence for the presence in prostatic adenomas of histamine-forming cells of neuroendocrine type; histamine release from these cells is under the control of alpha 1-adrenoreceptor subtype.

Adrenergic alpha-Agonists↗

The freezing of mammalian embryos: perspectives and possibilities.

Since the Ciba Foundation Symposium in 1952 on Mammalian Germ Cells when Dr Audrey Smith reported that 'exposure to very low temperatures is not incompatible with further development of mammalian eggs', much progress has been made on the problem of freezing mammalian embryos. The significant steps leading to this progress are reviewed and an attempt is made to assess the extent of our current knowledge and to relate this to experience gained in other fields of low temperature biology. There is good evidence that certain basic principles concerning cooling and warming rates are applicable to the preservation of all mammalian embryos so far studied, but differences between species and between stages of development within species exist, particularly in their resistance to cooling in temperature ranges above 0 degrees C. Some of these differences are illustrated by reference to experiments with pig embryos. Clearly there are many problems remaining to be solved, but practical applications of techniques for long-term storage of mammalian embryos are already feasible and offer interesting possibilities for future development.

Cryoprotective Agents↗

Characterization of loose and tight dimer forms of avian leukosis virus RNA.

Retroviral genomes consist of two identical RNA molecules joined non-covalently near their 5'-ends. Recently, we showed that an imperfect autocomplementary sequence, located in the L3 domain, plays an essential role in avian sarcoma-leukosis virus (ASLV) RNA dimerization in vitro. This sequence can adopt a stem-loop structure and is involved in ASLV replication. Here, we found that in the absence of nucleocapsid protein, RNA transcripts of avian leukosis virus (ALV) were able to form two types of dimers in vitro that differ in their stability: a loose dimer, formed at a physiological temperature, and a tight dimer, formed at a high temperature. A mutational analysis was performed to define the features of these dimers. The results of this analysis unambiguously confirm that the two L3 stem-loops interact directly in both types of dimers. A loop-loop interaction is the main linkage in the loose dimer. In contrast, in the tight dimer, the stem and the loop of the L3 hairpin form an extended duplex. Surprisingly, we also found that the dimerization properties defined for our ALV strain (type SR-A) differ from those found in other ASLV strains.

Animals↗

Insecticide and Insecticide Metabolite Interactions with Cytochrome P450 Mediated Activities in Maize

In vitro assays were used to determine if organophosphate, carbamate, and synthetic pyrethroid insecticides affected the cytochrome P450 monooxygenase (P450) catalyzed hydroxylation of nicosulfuron, bentazon, cinnamic acid, or lauric acid in maize microsomes. All P450 activities were inhibited approximately 50% by carbaryl, and none were inhibited by permethrin. Hydroxylations of nicosulfuron, bentazon, lauric acid, and cinnamic acid were inhibited by malathion 83, 92, 38, and 0%, respectively. Terbufos was only moderately (36%) inhibitory of in vitro P450 hydroxylation of nicosulfuron. Nicosulfuron hydroxylation was more sensitive than bentazon hydroxylation to inhibition by the insecticides, and both herbicide hydroxylations were more sensitive than lauric acid or cinnamic acid hydroxylations to the insecticides. Since the oxidative metabolites of terbufos were shown to be more potent inhibitors of in vivo nicosulfuron metabolism than terbufos, we examined the effect of terbufos-sulfone on in vivo and in vitro herbicide metabolism. Terbufos-sulfone inhibited metabolism of nicosulfuron and imazethapyr, but not bentazon, in excised corn shoots. Microsomal hydroxylation of nicosulfuron, bentazon, chlorimuron ethyl, and imazethapyr, as well as the desulfuration of malathion, were strongly inhibited (>65%) by terbufos-sulfone. Cinnamic acid hydroxylase appeared to be different from the P450(s) responsible for the pesticide metabolism as it was not inhibited by terbufos-sulfone. However, the data also suggest that malathion, nicosulfuron, bentazon, chlorimuron ethyl, and imazethapyr all share a P450 in common with terbufos-sulfone. Alternatively, there may be separate P450s for the metabolism of the herbicides and malathion, all of which also metabolize terbufos-sulfone. These data show that the inhibition of P450 hydroxylation of nicosulfuron by terbufos-sulfone can explain the injury when maize is exposed to both terbufos and nicosulfuron. However, the insecticides that are the most potent in vitro P450 inhibitors are not necessarily the ones that cause the most herbicide injury in the field.

Journal Article↗

AKINbeta3, a plant specific SnRK1 protein, is lacking domains present in yeast and mammals non-catalytic beta-subunits.

The SNF1/AMPK/SnRK1 heterotrimeric kinase complex is involved in the adaptation of cellular metabolism in response to diverse stresses in yeast, mammals and plants. Following a model proposed in yeast, the kinase targets are likely to bind the complex via the non-catalytic beta-subunits. These proteins currently identified in yeast, mammals and plants present a common structure with two conserved interacting domains named Kinase Interacting Sequence (KIS) and Association with SNF1 Complex (ASC), and a highly variable N-terminal domain. In this paper we describe the characterisation of AKINbeta3, a novel protein related to AKINbeta subunits of Arabidopsis thaliana, containing a truncated KIS domain and no N-terminal extension. Interestingly the missing region of the KIS domain corresponds to the glycogen-binding domain (beta-GBD) identified in the mammalian AMPKbeta1. In spite of its unusual features, AKINbeta3 complements the yeast sip1Deltasip2Deltagal83Delta mutant. Moreover, interactions between AKINbeta3 and other AKIN complex subunits from A. thaliana were detected by two-hybrid experiments and in vitro binding assays. Taken together these data demonstrate that AKINbeta3 is a beta-type subunit. A search for beta-type subunits revealed the existence of beta3-type proteins in other plant species. Furthermore, we suggest that the AKINbeta3-type subunits could be plant specific since no related sequences have been found in any of the other completely sequenced genomes. These data suggest the existence of novel SnRK1 complexes including AKINbeta3-type subunits, involved in several functions among which some could be plant specific.

Amino Acid Sequence↗