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C. Polge (1978)
Fertilization in the pig and horse.Journal of reproduction and fertility, 54 2
L. Abeydeera, W. Wang, R. Prather, B. Day (1998)
Maturation in vitro of pig oocytes in protein-free culture media: fertilization and subsequent embryo development in vitro.Biology of reproduction, 58 5
P. Morales, E. Pizarro, M. Kong, Marco Jara (2004)
Extracellular localization of proteasomes in human spermMolecular Reproduction and Development, 68
West Ap, Willison Kr (1996)
Brefeldin A and mannose 6-phosphate regulation of acrosomic related vesicular trafficking.European Journal of Cell Biology, 70
P. Morales, M. Kong, E. Pizarro, C. Pasten (2003)
Participation of the sperm proteasome in human fertilization.Human reproduction, 18 5
C. DeRenzo, G. Seydoux (2004)
A clean start: degradation of maternal proteins at the oocyte-to-embryo transition.Trends in cell biology, 14 8
L. Abeydeera, B. Day (1997)
In vitro penetration of pig oocytes in a modified Tris-buffered medium: effect of BSA, caffeine and calcium.Theriogenology, 48 4
W. Wang, K. Niwa, K. Okuda (2008)
In-vitro penetration of pig oocytes matured in culture by frozen\p=n-\thawed ejaculated spermatozoa
P. Sutovsky, G. Manandhar, J. Laurinčík, J. Letko, J. Caamaño, B. Day, L. Lai, R. Prather, K. Sharpe-Timms, R. Zimmer, M. Sutovsky (2005)
Expression and proteasomal degradation of the major vault protein (MVP) in mammalian oocytes and zygotes.Reproduction, 129 3
A. Guterman, M. Glickman (2004)
Deubiquitinating enzymes are IN/(trinsic to proteasome function).Current protein & peptide science, 5 3
W. Baarends, H. Roest, J. Grootegoed (1999)
The ubiquitin system in gametogenesisMolecular and Cellular Endocrinology, 151
Y. Saitoh, H. Sawada, H. Yokosawa (1993)
High-molecular-weight protease complexes (proteasomes) of sperm of the ascidian, Halocynthia roretzi: isolation, characterization, and physiological roles in fertilization.Developmental biology, 158 1
Alexander Wu, P. Sutovsky, G. Manandhar, Wei Xu, M. Katayama, B. Day, Kwang‐Wook Park, Y. Yi, Yan Xi, R. Prather, R. Oko (2007)
PAWP, a Sperm-specific WW Domain-binding Protein, Promotes Meiotic Resumption and Pronuclear Development during Fertilization*♦Journal of Biological Chemistry, 282
T. McCauley, W. Buhi, Guangming Wu, J. Mao, J. Caamaño, B. Didion, B. Day (2003)
Oviduct-Specific Glycoprotein Modulates Sperm-Zona Binding and Improves Efficiency of Porcine Fertilization In Vitro1, 69
K. Wilkinson (1997)
Regulation of ubiquitin‐dependent processes by deubiquitinating enzymesThe FASEB Journal, 11
H. Sawada, Youko Takahashi, J. Fujino, Sandra Flores, H. Yokosawa (2002)
Localization and roles in fertilization of sperm proteasomes in the ascidian Halocynthia roretziMolecular Reproduction and Development, 62
L. Santamaría, R. Martín, Ricardo Paniagua, B. Fraile, Manuel Nistal, Giorgio Terenghi, J. Polak (1993)
Protein gene product 9.5 and ubiquitin immunoreactivities in rat epididymis epitheliumHistochemistry, 100
C. Bebington, F. Doherty, Steven Fleming (2001)
The possible biological and reproductive functions of ubiquitin.Human reproduction update, 7 1
Jinping Luo, S. Megee, R. Rathi, I. Dobrinski (2006)
Protein gene product 9.5 is a spermatogonia‐specific marker in the pig testis: Application to enrichment and culture of porcine spermatogoniaMolecular Reproduction and Development, 73
M. Ekhlasi-Hundrieser, Katrin Gohr, A. Wagner, M. Tsolova, A. Petrunkina, E. Töpfer‐Petersen (2005)
Spermadhesin AQN1 Is a Candidate Receptor Molecule Involved in the Formation of the Oviductal Sperm Reservoir in the Pig1, 73
L. Veselský, J. Pěknicová, D. Čechová, M. Kraus, G. Geussová, V. Jonáková (1999)
Characterization of Boar Spermadhesins by Monoclonal and Polyclonal Antibodies and Their Role in Binding to OocytesAmerican Journal of Reproductive Immunology, 42
J. Liberda, P. Maňásková, Lucie Prelovská, M. Tichá, V. Jonáková (2006)
Saccharide-mediated interactions of boar sperm surface proteins with components of the porcine oviduct.Journal of reproductive immunology, 71 2
M. Katayama, P. Sutovsky, Bohsuk Yang, T. Cantley, A. Rieke, Randy Farwell, R. Oko, B. Day (2005)
Increased disruption of sperm plasma membrane at sperm immobilization promotes dissociation of perinuclear theca from sperm chromatin after intracytoplasmic sperm injection in pigs.Reproduction, 130 6
V. Pursel, L. Johnson (1975)
Freezing of boar spermatozoa: fertilizing capacity with concentrated semen and a new thawing procedure.Journal of animal science, 40 1
Production of (cid:1) -1,3-galactosyltransferase null pigs by means of nuclear transfer with fibroblasts bearing loss of heterozygosity mutations
L. Dang, F. Melandri, R. Stein (1998)
Kinetic and mechanistic studies on the hydrolysis of ubiquitin C-terminal 7-amido-4-methylcoumarin by deubiquitinating enzymes.Biochemistry, 37 7
P. Sutovsky, G. Manandhar, T. McCauley, J. Caamaño, M. Sutovsky, W. Thompson, B. Day (2004)
Proteasomal Interference Prevents Zona Pellucida Penetration and Fertilization in Mammals1, 71
W. Wang, M. Hosoe, Y. Shioya (1997)
Induction of cortical granule exocytosis of pig oocytes by spermatozoa during meiotic maturation.Journal of reproduction and fertility, 109 2
I. Tanii, K. Toshimori, S. Araki, C. Ōura (1992)
Extra-Golgi pathway of an acrosomal antigen during spermiogenesis in the ratCell and Tissue Research, 270
R. Moreno, J. Palomino, G. Schatten (2006)
Assembly of spermatid acrosome depends on microtubule organization during mammalian spermiogenesis.Developmental biology, 293 1
E. Mori, Shin-ichi Kashiwabara, Tadashi Baba, Yoshimasa Inagaki, T. Mori (1995)
Amino acid sequences of porcine Sp38 and proacrosin required for binding to the zona pellucida.Developmental biology, 168 2
Ronald Hunter, Ronald Hunter, R. Nichol (1988)
Capacitation potential of the fallopian tube: a study involving surgical insemination and the subsequent incidence of polyspermy.Gamete research, 21 3
Jungkee Kwon, Yu-Lai Wang, Rieko Setsuie, S. Sekiguchi, Yae Sato, Mikako Sakurai, M. Noda, S. Aoki, Y. Yoshikawa, K. Wada (2004)
Two closely related ubiquitin C-terminal hydrolase isozymes function as reciprocal modulators of germ cell apoptosis in cryptorchid testis.The American journal of pathology, 165 4
Tamar HadariS, Jessie, Warmst, I. Rose, Avram HershkoS (1992)
A ubiquitin C-terminal isopeptidase that acts on polyubiquitin chains. Role in protein degradation.The Journal of biological chemistry, 267 2
Wei‐Hua Wang, B. Day, Guang‐Ming Wu (2003)
How does polyspermy happen in mammalian oocytes?Microscopy Research and Technique, 61
Hongmei Wang, Changcheng Song, C. Duan, Weixian Shi, Cunxi Li, Dayuan Chen, Yongchao Wang (2002)
Effects of ubiquitin-proteasome pathway on mouse sperm capacitation, acrosome reaction and in vitro fertilizationChinese Science Bulletin, 47
K. Matsumura, K. Aketa (1989)
Activation of Ca2+ channels during the acrosome reaction of sea urchin sperm is inhibited by inhibitors of chymotrypsin-like proteases.Gamete research, 23 3
Z. Ellederová, P. Halada, P. Man, M. Kubelka, J. Motlík, H. Kovářová (2004)
Protein Patterns of Pig Oocytes During In Vitro Maturation1, 71
L. Lai, D. Kolber-Simonds, Kwang‐Wook Park, H. Cheong, J. Greenstein, G. Im, M. Samuel, A. Bonk, A. Rieke, B. Day, C. Murphy, D. Carter, R. Hawley, R. Prather (2002)
Production of α-1,3-Galactosyltransferase Knockout Pigs by Nuclear Transfer CloningScience, 295
M. Glickman, A. Ciechanover (2002)
The ubiquitin-proteasome proteolytic pathway: destruction for the sake of construction.Physiological reviews, 82 2
J. Bleil, Clifford Beall, P. Wassarman (1981)
Mammalian sperm-egg interaction: fertilization of mouse eggs triggers modification of the major zona pellucida glycoprotein, ZP2.Developmental biology, 86 1
Wei‐Hua Wang, L. Abeydeera, K. Okuda, K. Niwa (1994)
Penetration of porcine oocytes during maturation in vitro by cryopreserved, ejaculated spermatozoa.Biology of reproduction, 50 3
Yichin Liu, Lara Fallon, H. Lashuel, Zhihua Liu, P. Lansbury (2002)
The UCH-L1 Gene Encodes Two Opposing Enzymatic Activities that Affect α-Synuclein Degradation and Parkinson's Disease SusceptibilityCell, 111
R. Moreno, J. Ramalho‐Santos, P. Sutovsky, E. Chan, G. Schatten (2000)
Vesicular Traffic and Golgi Apparatus Dynamics During Mammalian Spermatogenesis: Implications for Acrosome Architecture1, 63
P. Maňásková, J. Liberda, M. Tichá, V. Jonáková (2000)
Aggregated and monomeric forms of proteins in boar seminal plasma: characterization and binding properties.Folia biologica, 46 4
C. Chung, Sung Baek (1999)
Deubiquitinating enzymes: their diversity and emerging roles.Biochemical and biophysical research communications, 266 3
A. D’Andrea, D. Pellman (1998)
Deubiquitinating enzymes: a new class of biological regulators.Critical reviews in biochemistry and molecular biology, 33 5
K. Wilkinson (2000)
Ubiquitination and deubiquitination: targeting of proteins for degradation by the proteasome.Seminars in cell & developmental biology, 11 3
V. Jonáková, M. Kraus, L. Veselský, Dana Čechová, Karel Bezouška, Marie Tichá (1998)
Spermadhesins of the AQN and AWN families, DQH sperm surface protein and HNK protein in the heparin-binding fraction of boar seminal plasma.Journal of reproduction and fertility, 114 1
P. Sutovsky (2003)
Ubiquitin‐dependent proteolysis in mammalian spermatogenesis, fertilization, and sperm quality control: Killing three birds with one stoneMicroscopy Research and Technique, 61
I. Day, L. Hinks, R. Thompson (1990)
The structure of the human gene encoding protein gene product 9.5 (PGP9.5), a neuron-specific ubiquitin C-terminal hydrolase.The Biochemical journal, 268 2
D. Mykles (1998)
Intracellular proteinases of invertebrates: calcium-dependent and proteasome/ubiquitin-dependent systems.International review of cytology, 184
F. Melandri, L. Grenier, L. Plamondon, W. Huskey, R. Stein (1996)
Kinetic studies on the inhibition of isopeptidase T by ubiquitin aldehyde.Biochemistry, 35 39
O. Coux, Keiji Tanaka, A. Goldberg (1996)
Structure and functions of the 20S and 26S proteasomes.Annual review of biochemistry, 65
H. Sawada, N. Sakai, Y. Abe, E. Tanaka, Youko Takahashi, J. Fujino, E. Kodama, S. Takizawa, H. Yokosawa (2002)
Extracellular ubiquitination and proteasome-mediated degradation of the ascidian sperm receptorProceedings of the National Academy of Sciences of the United States of America, 99
R. Vadlamudi, I. Joung, J. Strominger, Jaekyoon Shin (1996)
p62, a Phosphotyrosine-independent Ligand of the SH2 Domain of p56lck, Belongs to a New Class of Ubiquitin-binding Proteins*The Journal of Biological Chemistry, 271
A. Hershko, A. Ciechanover (1992)
The ubiquitin system for protein degradation.Annual review of biochemistry, 61
M. Gaczynska, P. Osmulski (2005)
Small-molecule inhibitors of proteasome activity.Methods in molecular biology, 301
Y. Hao, N. Mathialagan, E. Walters, J. Mao, L. Lai, D. Becker, Wensheng Li, J. Critser, R. Prather (2006)
Osteopontin Reduces Polyspermy During In Vitro Fertilization of Porcine Oocytes1, 75
S. Hanly (1961)
Prenatal mortality in farm animals.Journal of reproduction and fertility, 2
R. Hunter (2020)
Fertilization of pig eggs in vivo and in vitro.Journal of reproduction and fertility. Supplement, 40
Min Hu, Pingwei Li, Ling Song, P. Jeffrey, T. Chernova, K. Wilkinson, R. Cohen, Yigong Shi (2005)
Structure and mechanisms of the proteasome‐associated deubiquitinating enzyme USP14The EMBO Journal, 24
R. Hunter (1991)
Oviduct function in pigs, with particular reference to the pathological condition of polyspermyMolecular Reproduction and Development, 29
Y. Kajimoto, T. Hashimoto, Y. Shirai, Naoki Nishino, Takayoshi Kuno, Chikako Tanaka (1992)
cDNA cloning and tissue distribution of a rat ubiquitin carboxyl-terminal hydrolase PGP9.5.Journal of biochemistry, 112 1
R. Oko, D. Maravei (1994)
Protein composition of the perinuclear theca of bull spermatozoa.Biology of reproduction, 50 5
Yang Yu, W. Xu, Y. Yi, P. Sutovsky, R. Oko (2006)
The extracellular protein coat of the inner acrosomal membrane is involved in zona pellucida binding and penetration during fertilization: characterization of its most prominent polypeptide (IAM38).Developmental biology, 290 1
I. Tanii, K. Yoshinaga, K. Toshimori (1999)
Morphogenesis of the acrosome during the final steps of rat spermiogenesis with special reference to tubulobulbar complexesThe Anatomical Record, 256
N. Sakai, M. Sawada, H. Sawada (2004)
Non-traditional roles of ubiquitin-proteasome system in fertilization and gametogenesis.The international journal of biochemistry & cell biology, 36 5
Proc Natl Acad Sci U S A, 101
Hunter Rh (1976)
Sperm-egg interactions in the pig: monospermy, extensive polyspermy, and the formation of chromatin aggregates.Journal of Anatomy, 122
S. Sekiguchi, Jungkee Kwon, Etsuko Yoshida, H. Hamasaki, S. Ichinose, M. Hideshima, M. Kuraoka, Akio Takahashi, Y. Ishii, S. Kyuwa, K. Wada, Y. Yoshikawa (2006)
Localization of ubiquitin C-terminal hydrolase L1 in mouse ova and its function in the plasma membrane to block polyspermy.The American journal of pathology, 169 5
P. Sutovsky (2004)
Visualization of sperm accessory structures in the mammalian spermatids, spermatozoa, and zygotes by immunofluorescence, confocal, and immunoelectron microscopy.Methods in molecular biology, 253
L. Massicotte, K. Coenen, M. Mourot, M. Sirard (2006)
Maternal housekeeping proteins translated during bovine oocyte maturation and early embryo developmentPROTEOMICS, 6
H. Sawada, H. Yokosawa, M. Hoshi, S. Ishii (1983)
Ascidian sperm chymotrypsin-like enzyme; participation in fertilizationExperientia, 39
Jungkee Kwon, Yu-Lai Wang, Rieko Setsuie, S. Sekiguchi, Mikako Sakurai, Yae Sato, Won-Woo Lee, Y. Ishii, S. Kyuwa, M. Noda, K. Wada, Y. Yoshikawa (2004)
Developmental Regulation of Ubiquitin C-Terminal Hydrolase Isozyme Expression During Spermatogenesis in Mice, 71
Q. Sun, D. Fuchimoto, T. Nagai (2004)
Regulatory roles of ubiquitin-proteasome pathway in pig oocyte meiotic maturation and fertilization.Theriogenology, 62 1-2
AbstractThe 26S proteasome, which is a multi-subunit protease with specificity for substrate proteins that are postranslationally modified by ubiquitination, has been implicated in acrosomal function and sperm-zona pellucida (ZP) penetration during mammalian fertilization. Ubiquitin C-terminal hydrolases (UCHs) are responsible for the removal of polyubiquitin chains during substrate priming for proteasomal proteolysis. The inhibition of deubiquitination increases the rate of proteasomal proteolysis. Consequently, we have hypothesized that inhibition of sperm acrosome-borne UCHs increases the rate of sperm-ZP penetration and polyspermy during porcine in vitro fertilization (IVF). Ubiquitin aldehyde (UA), which is a specific nonpermeating UCH inhibitor, significantly (P < 0.05) increased polyspermy during porcine IVF and reduced (P < 0.05) UCH enzymatic activity measured in motile boar spermatozoa using a specific fluorometric UCH substrate, ubiquitin-AMC. Antibodies against two closely related UCHs, UCHL1 and UCHL3, detected these UCHs in the oocyte cortex and on the sperm acrosome, respectively, and increased the rate of polyspermy during IVF, consistent with the UA-induced polyspermy surge. In the oocyte, UCHL3 was primarily associated with the meiotic spindle. Sperm-borne UCHL3 was localized to the acrosomal surface and coimmunoprecipitated with a peripheral acrosomal membrane protein, spermadhesin AQN1. Recombinant UCHs, UCHL3, and isopeptidase T reduced polyspermy when added to the fertilization medium. UCHL1 was detected in the oocyte cortex but not on the sperm surface, and was partially degraded 6–8 h after fertilization. Enucleated oocyte-somatic cell electrofusion caused polarized redistribution of cortical UCHL1. We conclude that sperm-acrosomal UCHs are involved in sperm-ZP interactions and antipolyspermy defense. Modulation of UCH activity could facilitate the management of polyspermy during IVF and provide insights into male infertility.
Biology of Reproduction – Oxford University Press
Published: Nov 1, 2007
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