• Title/Summary/Keyword: Mitochondria complex

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Studies on the Fine Structures of Mouse Oocyte Whose Maturation has been suppressed in Vitro by Dibutyryl Cyclic AMP (Dibutyryl Cyclic AMP에 의해 成熟이 抑制된 Mouse 卵子의 微細構造에 관한 硏究)

  • 崔林淳
    • The Korean Journal of Zoology
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    • v.18 no.2
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    • pp.87-101
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    • 1975
  • Electron microscopic studies on the ultrastructure of the mouse oocyte were made to investigate the inhibition of germinal vesicle breakdown by dibutyryl cAMP. The nuclear membrane of the dibutyryl cAMP-treated oocyte is characterized by a decreased degree of folding, maintains the normal double membrane structure, and shows an increased occurrence of the nuclear pore. It is suggested that these may be related to the suppression of the maturation of oocytes at the germinal vesicle. Mitochondria in the control cell were shown to be spread evenly throughout the cytoplasm and structurally underdeveloped or transitionary having little cristae development. On the contrary, mitochondria in the treated oocyte were found to be localized mainly around the nucleus and to show a greater extent of cristae development. The oocyte treated with dibutyryl cAMP appears to have fewer and structurally simpler lysosomes as compared to the control. The Golgi complex in the control oocyte exhibits the typical granular and lamellar structure, whereas that in the treated cell is poorly developed. Many multivesicular bodies, tonofilaments, and free ribosomes were observed in the control as well as in treated cells. The microvilli become structurally irregular, and a development of the perivitelline space is apparent in the treated oocyte. It is concluded that there is no basic difference in the ultrastructure between the oocytes treated with dibutyryl cAMP for 24 hours in the medium and those collected directly from the follicle. However, the finding that dibutyryl cAMP induces a development of more pores along the nuclear membrane strongly suggests the possibility that this compound inhibits the maturation of oocytes by influencing the permeability of the nuclear membrane.

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Ultrastructure of the Hindgut Epithelial Cells in the Cockroach, Blattella germanica L. (바퀴의 後腸 上皮細胞들에 대한 微細構造)

  • Yu, Chai Hyeock
    • The Korean Journal of Zoology
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    • v.28 no.1
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    • pp.44-59
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    • 1985
  • The epithelium of the hindgut in the german cockroach, Blattella germanica Linne, was observed with electron microscope. The epithelium of the ileum, which is located at the anterior hindgut, is composed of a single layer of squamous and cuboidal cells. The liminal surface of the epithelium is lined with the cuticular intima. The epithelial cells contain cell organelles expected to be found in absorptive cells, and some epithelial cells have numerous lamelated crystals, the "spherites". The rectal epithelium of posterior hindgut is composed of rectal pads which are covered with cuticular intima on the luminal side. The rectal pads are composed of columnar absorptive cells and basal cells. The apical plasma membrane of columnar cell is made of microvilli, where mitochondria associated with some of the microvilli. The lateral plasma membrane is highly infolded and space is an uniform width of approximately 200$\\AA$. Well developed mitochondria are found closely associated with the infoldings and this is referred to as the "mitochondrial-scalariform complex". A septate junction is found near the apical zone between the columnar absorptive cells, whereas many desmosomes and intercellular spaces are formed between the columnar cells. Basal cells are bowl-shaped where the convex surface is inlaid into the basal surface of the columnar cells while the concave surface faces the basal lamina. The cytoplasm of the basal cell is electron dense and contains well developed cell organelles. The basal sheath is located between the basal membrane and basal lamina, providing barrier between the epithelium and the hemolymph. The epithelium is surrounded by the subepithelial space and muscles. The subepithelial space, which is composed of fibrous connective tissue, is innervated by many tracheoles and axons.

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Ultrastructure of the Ventral Nephrocytes in the Larva of Lucilia illustris Meigen (연두금파리 종령유충의 복신세포의 미세구조)

  • Cho, Jeong-Sook;Kim, Kwan-Seon;Kim, Woo-Kap
    • Applied Microscopy
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    • v.21 no.2
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    • pp.29-38
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    • 1991
  • Ventral nephrocytes in the larva of the Lucilia illustris comprise ellipsoid cells situated onto the salivary glands. The cells are $60{\sim}100{\mu}m$ in diameter. Junctional complex beneath the basement membrane hold the plasma membrane in a even contour. Intracellular channels from the juntion complex are well developed at the cortex part of the cell. Coated vesicles pinched off from the channels seems to be connected with the ${\alpha}$-vacuoles via the tubular elements, which is regared as selective absorption system from the hemolymph. Two nuclei are sometimes observed in the medulla part of the cell. Ventral nephrocytes contain well-developed rough endoplasmic reticulum and Golgi complex, and numerous mitochondria. These cellular organelles synthesize lysosome. The lysosome not only digest some cell organells but also seems to be related with the ${\beta}$-vacuoles.

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Study of Glycyrrhizic Acid:menthol Supramolecular Complexes on Mitochondrial Functional Activity in in-vitro Experiments

  • L. A. Еttibaeva;U. K. Abdurakhmanova;A. D. Matchanov
    • Journal of the Korean Chemical Society
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    • v.67 no.2
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    • pp.99-105
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    • 2023
  • Here we present how a supramolecular complex of Glycyrrhizic acid (GA) with Menthol (Mt) affects the blood glucose levels and glycogen synthesis in the liver of rats in in-vivo experiments with diabetes caused by alloxan. We have shown that Menthol, Glycyrrhizic acid and GA:Mt supramolecular complexes can restore functional dysfunction of the liver mitochondria in alloxan diabetes, i.e., inhibit lipid peroxidation. The hypoglycemic activity and mitochondrial membrane stabilizing properties of the supramolecular complex GA:Mt (4:1) in alloxan diabetes were more pronounced than those of menthol, GA and its GA:Mt (2:1) and GA: Mt (9:1) supramolecular complexes.

細胞膜, 色素體 및 細胞含有物

  • 한국동물학회
    • The Korean Journal of Zoology
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    • v.12 no.4
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    • pp.123-134
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    • 1969
  • 細胞學의 發展은 電子顯微鏡의 分解能$(2.4\\mu 以上)$이 增加됨과 아울러 超薄切片法(Sjostrand 1953) 및 固定法의 改良(Palade 1952) 으로 細胞의 超微細構造를 追究하는 反面 物理化學的構成成分과 機能面에서 細胞生物學, 더 나아가 分子生物學으로 發展하였다. 細胞膜(原形質膜)의 分子的 構造는 二重의 脂質分子膜의 表面에 蛋白質分子가 結合하고 있는 單位膜(Robertson 1961, Danielli 1964)으로 되어있다. 이 單位膜構造는 모든 動植物 細胞의 表面膜만이 아니고 核膜, mitochondria, Golgi complex, 色素體等 細胞內 膜系가 同一하게 되어 있고(Robertson 1961), 膜의 무게는 位置(Sjostrand 1963) 및 小器官別(Yamamoto 1963)로 다르다. 또 各細胞는 그 機能에 따라 部分的으로 特殊하게 分化되어 있다.

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Ultrastructure of Nerve Cells in the Pars Intercerebralis of Cabbage Butterfly Pieris rapae L. (배추흰나비 (Pieris rapae L.) 뇌간부(腦間部)의 신경세포(神經細胞)에 대한 미세구조(微細構造))

  • Lee, B.H.;Kim, W.K.
    • Applied Microscopy
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    • v.12 no.2
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    • pp.55-68
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    • 1982
  • The study on the nerve cells in the pars intercerebralis(IP) of 5-day-old cabbage butterfly Pieris rapae L. was performed to observe their ultrastructures and classify them on the basis. of the differences in size, shape and relative distribution cf cell organelles. The brain-subesophageal ganglion complex was fixed in 1% paraformaldehyde-1% gluaraldehyde mixture and embedded in araldite mixture. The transverse thin sections of IP were stained with uranyl acetate and lead citrate and examined by Hitachi 500 and ]EM 100B electron microscope. Five distinct types. of nerve cells are recognized and are arbitrarily designated as Type I, Type II Type III, Type IV and Type V. Type I neurone: These neurones are neurosecretory cells. Several neurosecretory cells are. recognized in the pars intercerebralis. They are roughly round or peach-shaped cells measuring $13{\sim}25{\mu}m$ in diameter. The rounded nucleus shows about $5{\sim}10{\mu}m$ in diameter. The chromatin is predominantly diffused with only occasional dense patches. The perikaryon contains numerous. mitochondria, free polyribosomes and neurosecretory granules. The neurosecretory granules are relatively uniform in electron density, and each one is about $100{\sim}400{\mu}m$ in diameter and surrounded by a single membrane. The granules are also observed mostly as in groups. In one group of neurones the cisternae of endoplasmic reticulum are distended or in other group of neurones are not distended. Golgi saccules are slightly dilated at their lateral extremities and contains. frequenty dense rounded materials. Type II neurone: Thes have the largest soma in the pars intercerebralis about $30{\sim}35{\mu}m$ in diameter. They also show roughly polygonal in shape. The nucleus is elongated or sickle-shaped. The chromatin is mainly in the euchromatin form. The perikarya in these cells are well populated with populated with free ribosomes and contain numerous mitochondria and Golgi bodies. The cisternae of granular endoplasmic reticulum are also well distributed. Type III neurone: They are oval or spindle-shaped and also medium-sized. neurones approximately $15{\sim}17{\mu}m$ in length. The nucleus is oval or slightly elongated in shape and $8{\sim}9{\mu}m$ in length. The chromatin occurs in diffused form. The cytoplasm contains many filamentous or oval mitochondria. The perikaryon has also numerous free polyribosomes and cisternae of granular endoplasmic reticulum. Type VI neurone: They are roughly polygonal in shape probably due to the close approximation of the adjacent cells. The soma is about $7{\sim}8{\mu}m$ in diameter. The nucleus is round or oval in shape and $5.0{\sim}5.8{\mu}m$ in diameter. The necleus also occupies a large proprion of the cell body. The perikaryon is well populated with free ribosomes and contains several mitochondria and cistenae of granular endoplasmic reticulum. Type V neurone: These neurones are similar to Type VI neurones in various respects such as cell size and cell inclusion, but they differ from Type IV neurones in shape. The soma is oval or slightly elongated. The cell body contains several filamentous and oval mitochondria.

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Effects of Mitochondrial Reactive Oxygen Species on Neuronal Excitability in Rat Spinal Substantia Gelatinosa Neurons

  • Lee, Hae-In;Park, A-Reum;Chun, Sang-Woo
    • International Journal of Oral Biology
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    • v.37 no.1
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    • pp.17-23
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    • 2012
  • Recent studies indicate that reactive oxygen species (ROS) are critically involved in persistent pain primarily through spinal mechanisms, and that mitochondria are the main source of ROS in the spinal dorsal horn. To investigate whether mitochondrial ROS can induce changes in membrane excitability on spinal substantia gelatonosa (SG) neurons, we examined the effects of mitochondrial electron transport complex (ETC) substrates and inhibitors on the membrane potential of SG neurons in spinal slices. Application of ETC inhibitors, rotenone or antimycin A, resulted in a slowly developing and slight membrane depolarization in SG neurons. Also, application of both malate, a complex I substrate, and succinate, a complex II substrate, caused reversible membrane depolarization and enhanced firing activity. Changes in membrane potential after malate exposure were more prominent than succinate exposure. When slices were pretreated with ROS scavengers such as phenyl-N-tert-buthylnitrone (PBN), catalase and 4- hydroxy-2,2,6,6-tetramethylpiperidine-1-oxyl (TEMPOL), malate-induced depolarization was significantly decreased. Intracellular calcium above $100{\mu}M$ increased malateinduced depolarization, witch was suppressed by cyclosporin A, a mitochondrial permeability transition (MPT) inhibitor. These results suggest that enhanced production of spinal mitochondrial ROS can induce nociception through central sensitization.

Quercetin Induces Mitochondrial Biogenesis via HO-1 Expression in HepG2 Cell (HepG2 cell에서 quercetin의 HO-1 발현을 통한 mitochondria의 생합성 유도 효과에 관한 연구)

  • Kang, Jaekoo;Jang, Sang Chul;Lee, Ki Seung;Kim, Jin Hee;Chong, Myong Soo
    • Journal of the Korean Institute of Oriental Medical Informatics
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    • v.21 no.1
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    • pp.14-22
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    • 2015
  • Flavonoids show diverse bioactivities, such as anti-oxidant, anti-cancer, anti-allergic, anti-inflammatory, and anti-viral. Quercetin is one of the flavonoids present in a wide range of plants, especially onions and consumed all over the world. Recently, it is known that quercetin induces mitochondrial biogenesis in vivo and in vitro. However, detail mechanism of these actions remains unknown. We investigated quercetin's effects on mitochondrial biogenesis in HepG2 cells, and determined the mechanisms involved. We found that quercetin treatment induced the expression of mitochondrial biogenesis activators, $PGC-1{\alpha}$, NRF-1, TFAM, and mitochondrial proteins, cytochorome c and complex IV (COXIV). Moreover, amount of mitochondrial DNA was also increased by quercetin. Quercetin has been known to induce heme oxygenase (HO)-1 in several types of cells. Here, we found quercetin induces HO-1, and inhibition of HO-1 or CO, which is product of HO-1, decreased quercetin-induced mitochondrial biogenesis such as induction of $PGC-1{\alpha}$, NRF-1, TFAM, cytochorome c, COXIV, and mitochondrial DNA. These findings imply that quercetin can increase mitochondrial biogenesis via HO-1/CO system. High glucose results in dysfunction of mitochondria biogenesis. In the present study, 25 mM glucose decreased mitochondrial biogenesis and this damage was restored by quercetin. Conversely, inhibition of HO-1 or CO inhibited quercetin-induced mitochondrial biogenesis rescue. These results suggest that quercetin enhances mitochondrial biogenesis via HO-1/CO system and hence, can rescue mitochondria from damage by high glucose.

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Ultrastructure and Histochemistry on the Integumentary System of the Rockfish, Sebastiscus tertius (Teleostei: Scorpaenidae) (붉은쏨뱅이 (Sebastiscus tertius) 피부계의 미세구조 및 조직화학적 특징)

  • Baek, Jae-Min;Kim, Chul-Won;Lim, Sang-Gu;Lee, Jae-Bong;Lee, Jung-Sick
    • Applied Microscopy
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    • v.34 no.2
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    • pp.83-93
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    • 2004
  • Integumentary structures of the rockfish, Sebastiscus tertius were examined by means of the light and transmission electron microscopy. Stratified epidermal layer consists of supporting cells, unicellular glands, granular cells and mitochondria-rich cells. The epidermal layer could be classified into superficial, intermediate and basal layer by morphology and structure of the supporting cells. Mucous cells of unicellular gland were observed in the superficial and intermediate layer of the epidermis. The mucous materials were identified as acidic and carboxylated mucosubstance by histochemical methods. Club cell has well-developed central vacuole, rough endoplasmic reticula and Golgi complex in the cytoplasm. Granular cells were observed in the superficial layer and contained numerous granules of high electron density. Mitochondria-rich cells are characterized by well-developed microfilaments in cortex and numerous tubular mitochondria in medullar cytoplasm. Three types of pigment cells in the dermal layer could be distinguished with electron density of cytoplasmic inclusions.