Browse > Article

Expression Analysis of Matrix Metalloproteinases and Tissue Inhibitor of Matrix Metalloproteinases from In Vitro Maturation Oocytes Complexes in Porcine  

Kim, Sang-Hwan (Animal Biotechnology The Graduate School of Biology & Information Technology, Hankyong National University)
Kang, Hyun-Ah (Animal Biotechnology The Graduate School of Biology & Information Technology, Hankyong National University)
Kim, Dae-Seung (Animal Biotechnology The Graduate School of Biology & Information Technology, Hankyong National University)
Lee, Myeong-Seop (Medi Kinetics Co., Ltd.)
Seo, Kang-Suk (Department of Animal Science and Technology, Sunchon National University)
Min, Kwan-Sik (Animal Biotechnology The Graduate School of Biology & Information Technology, Hankyong National University)
Yoon, Jong-Taek (Animal Biotechnology The Graduate School of Biology & Information Technology, Hankyong National University)
Publication Information
Abstract
Matrix metalloproteinases (MMP) play important roles in extracellular matrix (ECM) remodeling during ovarian follicular development, oocytes development and ovulation. In an attempt to investigate the effect of MMP activation in development cumulus-oocytes complexes, we examined the localization and expression of MMP, and monitored MMP expression profile. Cumulus-oocytes complexes were collected and matured in vitro for 24 hr, 36 hr and 48 hr. A mRNA expression of MMP-2, MMP-9, TIMP-2 and TIMP-3 was detected in all culture medium regardless of CC, DC and CDCs. Activity of MMP-2 in the DC progressively was increased from 24 hr to 48 hr. But MMP-9 was not detected in all culture medium. The localization of MMP-2 was also measured by immunohistochemistry analysis. The MMP-2 and TIMP-2 was detected in cumulus cell and oocyte zone pellucida. Expression of MMP-2 protein in the COCs was progressively increased from 24 hr to 48 hr. However, MMP-9 protein was progressively decreased from 24 hr to 48 hr. And TIMP-2 protein was most highly expressed in the CDCs 36 hr. Expression of TIMP-3 protein in the CDCs was progressively increased from 24 hr to 48 hr. In conclusion, these results suggest that MMP-2 plays a role in maintaining normal maturation and development by controlling the ECM inhibitor concentration on cumulus cell and oocytes.
Keywords
MMP2; MMP9; TIMP2; TIMP3; Cumulus-oocytes complexes;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
연도 인용수 순위
1 De loos F, van Maurik P, van Beneden T, Kruip Th AMA (1992): Structure aspects of bovine oocyte maturation in vitro. Mol Reprod Dev 31:208-214.   DOI   ScienceOn
2 Gosden RG, Mullan J, Picton HM, Yin H, Tan SL (2002): Current perspective on primordial follicle cryopreservation and culture for reproductive medicine. Hum Reprod Update 8:105-110.   DOI   ScienceOn
3 Woessner Jr JF (1991): Matrix metalloproteinases and their irhibitors in connective tissue remodeling. FASEB J 5:2145-2154.   DOI
4 김연수, 김철욱, 김인철, 곽대오, 정기화 (2009): Brilliant cresyl blue 염색 방법과 극체 방출 여부에 따른 돼지 체외수정용 난포란 선별 방법이 배발달에 미치는 영향. 한국동물번식학회지 33(1):29-33.   과학기술학회마을
5 Riley SC, Leask R, Chard T, Wathen NC, Calder A, Howe DC (1999): Secretion of matrix metalloproteinase- 2, matrix metalloproteinase-9 and tissue inhibitors of metalloproteinases into the intrauterine compartments during early pregnancy. Mol Hum Reprod 5:376-381.   DOI   ScienceOn
6 정기화, 허태영, 곽대오, 방충생, Day BN (1999): 돼지 난자의 직경이 체외성숙 및 체외발달에 미치는 영향. 한국수정란이식학회지 14:17-22.
7 Tadakuma H, Okamura H, Kitaoka M, Iyana K, Usuku G (1993): Association of immunolocalization of matrix metalloproteinase 1 with ovulation in hCG-treated rabbit ovary. J Reprod Fertil 98:503-508.   DOI   ScienceOn
8 Visse R, Nagase H (2003): Matrix metalloproteinases and tissue inhibitors of metalloproteinases: structure, function, and biochemistry. Circ Res May 2:92 (8): 827-839.   DOI   ScienceOn
9 Woessner JF (2002): MMPs and TIMPs - an historical perspective. Molecular Biotechnology 22:33-49.   DOI   ScienceOn
10 Riley SC, Gibson AH, Leask R, Mauchline DJW, Pedersen HG, Watson ED (2001): Secretion of matrix metalloproteinases 2 and 9 and tissue inhibitor of metalloproteinases into follicular fluid during follicle development in equine ovaries. Reproduction 121:553-560.   DOI   ScienceOn
11 Sato T, Iwai M, Sakai T, Sato H, Seiki M. Mori Y, Ito A (1999): Enhancement of membrane-type 1-matrix metalloproteinase (MT1-MMP) production and sequential activation of progelatinase A on human squamous carcinoma cells co-cultured with hurnan dermal fibroblasts. Br J Cancer 80:1137-1143.   DOI   ScienceOn
12 McCaffery FH, Leask R, Riley SC, Telfer EE (2000): Culture of bovine preantral follicles in a serum-free system: markers for assessment of growth and development. Biol Reprod 63:267-273.   DOI   ScienceOn
13 Smith MF, McIntush EW, Ricke WA, K, Kojima FN, Smith GW (1999): Regulation of ovarian extracellular matrix remodeling by metalloproteinases and their tissue inhibitors: effects on follicular development, ovulation and luteal function. J Reprod Fertil Suppl 54:367-381.
14 Monniaux D, Pisselet C (1992): Control of proliferation and differentiation in ovine granulosa cells by insulin-like growth factor-1 and follicle stimulating hormone in vitro. Biol Reprod 46:109-119.   DOI   ScienceOn
15 Nicchas B, Alberio R, Fouladi-Nashta AA, Webb R (2005): Relationship between low-molecular weight insulin-like growth fator binding proteins, caspase-3 activity and oocyte quality. Biol Reprod 72:796-804.   DOI
16 O''Shea JD, Rodgers RJ, D"Occhi MJ (1989): Cellular composition of the cyclic corpus luteum of the cow. J Reprod Fertil 85:483.   DOI   ScienceOn
17 Matthew JG, Marsha AM, Paul CWT (1995): Identification of matrix metalloproteinases and metalloproteinase inhibitors in bovine corpora lutea and their variation during the estrous cycle. J Anim Sci 74:849-857.
18 Marbaix E, Kokorine I, Moulin P, Donnez J, Eeckhout Y, Courtoy PJ (1996): Menstrual breakdown of human endometrium can be mimicked in vitro and is selectively and reversibly blocked by inhibitors of matrix metalloproteinases. Proc Natl Acad Sci USA Aug 20;93(17):9120-9125.   DOI   ScienceOn
19 Monniaux D, Huet C, Besnard N, Clement F, Bosc M, Pisselet C Monget P, Mariana JC (1997): Follicular growth and ovarian dynamics in mammals. J Reprod Fertil Suppl 51:3-23.
20 Marbaix E, Donnez J, Courtoy PJ, Eeckhout Y (1992): Progesterone regulates the activity of collagenase and related gelatinases A and B in human endometrial explants. Proc Natl Acad Sci USA. Dec 15;89(24):11789-11793.   DOI   ScienceOn
21 Kikuchi K, Nagai T, Ikeda H, Noguchi J, Shimada A, Soloy E, Kaneko H (1998): Cryopreservation and ensuing in vitro fertilization abiliy of boar spermatozoa from epididymides stored at 4${^{\circ}C}$. Theriogenology 50:615-623.   DOI   ScienceOn
22 Greenwald GS, Roy SK (1994): Follicular development and controL In: Knobil E, Neill J (eds.), The Physiology of Reproduction 2nd edit. New York: Raven pp. 629-724.
23 Keiichiro Kizaki, Koicchi Ushizawa, Toru Takahashi, Osamu Yamada, Junici Todoroki, Takashi Sato, Akira Ito and Kazuyoshi Hashizume (2008): Gelatinase (MMP-2 and -9) expression profiles during gestation in the bovine endometrium. Reproductive Biology and Endocrinology 6:66.   DOI   ScienceOn
24 Kuwayama M, Hamano S, Nagai T (1992): Vitrification of bovine blastocysts obtained by in vitro culture of oocytes matured and fertilized in vitro. J Reprod Fertil 96:187-193.   DOI   ScienceOn
25 Fiona H, McCaffery, Rosemary Leask, Simon C, Riley, Evelyn E Telfer (2000): Culture of bovine preantral follicles in a serum-free system: markers for assessment of growth and development. Biology of Reprod 63:267-273.   DOI   ScienceOn
26 Gutierrez CG, Ralph JH, Telfer EE, Wilmut I, Webb R (2000): Bovine preantral to antral follicles after long term culture in vitro. Biol Reprod 67(4):1197- 1203.
27 Bischof P, Meisser A, Campana A (2000): Paracrine and autocrine regulators of trophoblast invasion a review. Placenta. Mar-Apr;21 Suppl A:S55-60.
28 Imai K, Khandoker MA, Yonai M, Takahashi T, Sato T, Ito A, Hasegawa Y, Hashizume K (2003): Matrix metalloproteinases-2 and -9 activities in bovine follicular fluid of different-sized follicles: relationship to intra-follicular inhibin and steroid concentrations. Domest Anim Endocrinol 24:171-183.   DOI   ScienceOn
29 Ashida K, Nakatsukasa H, Higashi T, Ohguchi S, Hino N, Nouso K, Urabe Y, Yoshida K, Kinugasa N, Tsuji T (1996): Cellular distribution of 92-kd type IV collagenase/gelatinase B in human hepatocellular carcinoma. Am J Pathol Dec;149(6):1803-1811.
30 Birkedal-Hansen H, Moore WG, Bodden MK, Windsor LJ, Birkedal-Hansen B, DeCarlo A, Engler JA (1993): Matrix metalloproteinases: A review. Crit Rev Oral Biol Med 4(2):197-250.   DOI
31 Bjorn SF, Hastrup N, Larsen JF, Lund LR, Pyke C (2000): Messenger RNA for membrane type 2 matrix metalloproteinase, MT2-MMP, is expressed in human placenta of first trimester. Placenta 21:170-176.   DOI   ScienceOn
32 Curry Jr TE, Osteen KG (2001): Cyclic changes in the matrix metalloproteinase system in the ovary and uterus. Biol Reprod 64:1285-1296.   DOI   ScienceOn
33 Ebner T, Moser M, Sommergruber M, Tews G (2003): Selection based on morphological assessment of oocytes and embryos at different stages of preimplantation development: A review. Hum Reprod Update 9:251-262.   DOI   ScienceOn
34 Anguita B, Vandaele L, Mateusen B, Maes D, Van Soom A (2007): Developmental competence of bovine oocytes is not related to apoptosis incidence in oocytes, cumulus cells and blastocysts. Theriogenology 67:537-549.   DOI   ScienceOn
35 Alm H, Torner H, Lohrke B, Viergutz T, Ghoneim IM, Kanitz W (2005): Bovine blastocyst development rate in vitro is influenced by selection of oocytes by brilliant cresyl blue staining before IVM as indicator for glucose-6-phosphate dehydrogenase activity. Theriogenology 63:2194-2205.   DOI   ScienceOn