• 제목/요약/키워드: Mechanisms of uptake

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Drug Discovery Perspectives of Antisense Oligonucleotides

  • Yeonjoon Kim
    • Biomolecules & Therapeutics
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    • 제31권3호
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    • pp.241-252
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    • 2023
  • The era of innovative RNA therapies using antisense oligonucleotides (ASOs), siRNAs, and mRNAs is beginning. Since the emergence of the concept of ASOs in 1978, it took more than 20 years before they were developed into drugs for commercial use. Nine ASO drugs have been approved to date. However, they target only rare genetic diseases, and the number of chemistries and mechanisms of action of ASOs are limited. Nevertheless, ASOs are accepted as a powerful modality for next-generation medicines as they can theoretically target all disease-related RNAs, including (undruggable) protein-coding RNAs and non-coding RNAs. In addition, ASOs can not only downregulate but also upregulate gene expression through diverse mechanisms of action. This review summarizes the achievements in medicinal chemistry that enabled the translation of the ASO concept into real drugs, the molecular mechanisms of action of ASOs, the structure-activity relationship of ASO-protein binding, and the pharmacology, pharmacokinetics, and toxicology of ASOs. In addition, it discusses recent advances in medicinal chemistry in improving the therapeutic potential of ASOs by reducing their toxicity and enhancing their cellular uptake.

가시오갈피 물 추출물이 간세포에서 포도당 이용 대사에 미치는 영향 (Effects of Acanthopanax senticosus Water Extract on Glucose-Regulating Mechanisms in HepG2 Cells)

  • 김대중;강윤환;김경곤;김태우;박재봉;최면
    • 한국식품영양과학회지
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    • 제46권5호
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    • pp.552-561
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    • 2017
  • 본 연구에서는 가시오갈피 물 추출물(ASW)를 이용하여 아직 시도된 바가 없는 HepG2 세포 내 포도당 유입과정 및 glucokinase(GK) 활성을 통한 포도당 이용대사 실험을 수행하였다. 포도당의 세포 내 유입은 GLUT2의 transcription factor들 중 하나인 $HNF-1{\alpha}$의 활성화로 GLUT2의 유전자 발현이 증가하여 이루어지는 것을 확인하였다. GK 활성 측정 결과 ASW가 GK를 활성화하여 포도당의 인산화에 영향을 주는 것을 확인하였고 AMP-activated protein kinase의 인산화 증가로 glycolysis에 관여하는 효소인 GK의 단백질 발현은 증가하고, gluconeogenesis에 관여하는 phosphoenolpyruvate carboxykinase의 단백질 발현은 감소하는 것을 확인하였다. 그리고 인산화된 포도당이 glycogen으로 전환 저장되는 메커니즘을 pPI3k-pAkt-pGSK-$3{\beta}$의 단계별 단백질 발현을 확인함으로써 검증하였으며, glycogen 함량 측정을 통해 확인하였다. 본 연구를 통해 ASW가 다양한 메커니즘에 작용하여 당뇨의 예방 및 개선에 활용할 수 있는 잠재적 소재임을 확인하였고, 이는 ASW가 천연 기능성 소재로서의 개발가치가 높음을 시사한다.

Unusual Tc-99m MDP Uptake in the Keloid Developed after Subtotal Gastrectomy

  • Lim, Seok-Tae;Park, Soon-Ah;Sohn, Myung-Hee;Yim, Chang-Yeol
    • 대한핵의학회지
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    • 제34권5호
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    • pp.436-437
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    • 2000
  • A 63-year-old male who had subtotal gastrectomy for early gastric cancer three months ago underwent Tc-99m bone scintigraphy for the evaluation of skeletal metastases. He had no symptoms such as fever, tenderness, or wound discharge. On physical examination, the surgical scat along the midline of the upper abdomen had keloid formation and there was no radiographic evidence of calcification. Bone scintigraphy (Fig. 1A & 1B) demonstrated all unusual linear increased uptake along the midline of the upper abdomen that corresponded to the,skin incision for subtotal gastrectomy. Usually, an incisional scar will not be visualized in Tc-99m methylene diphosphate (MDP) scintigraphy beyond two weeks after surgery.$^{1)}$ Upon reviewing the literature, there were only a few reports where localization of Tc-99m MDP in surgical scars were found two months after surgery.$^{2)}$ It was also reported that a few cases with Tc-99m MDP uptake in the keloid scar developed after surgery. Although there are several potential mechanisms that may explain the uptake of Tc-99m MDP in scar tissue, the primary mechanism in older scars is suggested to be a result of pathological calcification.$^{2)}$ Siddiqui et al$^{3)}$ suggested it could be due to microscopic calcification in small resolving hematomas. However, the primary mechanism in keloid scar is not well-known. We should obtain oblique or lateral views to differentiate the uptake in healing surgical scars from the artifactual uptake.

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Alterations in Membrane Transport Function and Cell Viability Induced by ATP Depletion in Primary Cultured Rabbit Renal Proximal Tubular Cells

  • Lee, Sung-Ju;Kwon, Chae-Hwa;Kim, Yong-Keun
    • The Korean Journal of Physiology and Pharmacology
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    • 제13권1호
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    • pp.15-22
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    • 2009
  • This study was undertaken to elucidate the underlying mechanisms of ATP depletion-induced membrane transport dysfunction and cell death in renal proximal tubular cells. ATP depletion was induced by incubating cells with 2.5 mM potassium cyanide(KCN)/0.1 mM iodoacetic acid(IAA), and membrane transport function and cell viability were evaluated by measuring $Na^+$-dependent phosphate uptake and trypan blue exclusion, respectively. ATP depletion resulted in a decrease in $Na^+$-dependent phosphate uptake and cell viability in a time-dependent manner. ATP depletion inhibited $Na^+$-dependent phosphate uptake in cells, when treated with 2 mM ouabain, a $Na^+$ pump-specific inhibitor, suggesting that ATP depletion impairs membrane transport functional integrity. Alterations in $Na^+$-dependent phosphate uptake and cell viability induced by ATP depletion were prevented by the hydrogen peroxide scavenger such as catalase and the hydroxyl radical scavengers(dimethylthiourea and thiourea), and amino acids(glycine and alanine). ATP depletion caused arachidonic acid release and increased mRNA levels of cytosolic phospholipase $A_2(cPLA_2)$. The ATP depletion-dependent arachidonic acid release was inhibited by $cPLA_2$ specific inhibitor $AACOCF_3$. ATP depletion-induced alterations in $Na^+$-dependent phosphate uptake and cell viability were prevented by $AACOCF_3$. Inhibition of $Na^+$-dependent phosphate uptake by ATP depletion was prevented by antipain and leupetin, serine/cysteine protease inhibitors, whereas ATP depletion-induced cell death was not altered by these agents. These results indicate that ATP depletion-induced alterations in membrane transport function and cell viability are due to reactive oxygen species generation and $cPLA_2$ activation in renal proximal tubular cells. In addition, the present data suggest that serine/cysteine proteases play an important role in membrane transport dysfunction, but not cell death, induced by ATP depletion.

Regulatory Mechanisms of Angiotensin II on the $Na^+/H^+$ Antiport System in Rabbit Renal Proximal Tubule Cells. II. Inhibitory Effects of ANG II on $Na^+$ Uptake

  • Han, Ho-Jae;Park, Soo-Hyun;Koh, Hyun-Ju
    • The Korean Journal of Physiology and Pharmacology
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    • 제1권4호
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    • pp.425-434
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    • 1997
  • Many reports represent that angiotensin II (ANG II) caused a dose dependent biphasic effects on fluid transport in the proximal tubule. However, respective roles of different signaling pathways in mediating these effects remain unsettled. The aim of the present study was to examine signaling pathways at high doses of ANG II on the $Na^+$ uptake of primary cultured rabbit renal proximal tubule cells(PTCs) in hormonally defined serum-free medium. High concentrations of ANG II $(>10^{-9}\;M)$ inhibited $Na^+$ uptake and increased $[Ca^{2+}]_i\;level$ in the PTCs. However, low concentrations of $(<10^{-11}\;ANG\;II)$ stimulated $Na^+$ uptake and did not affect $[Ca^{2+}]_i\;level$. 8-(N, N-diethylamino)-octyl-3,3,5- trimethoxybenzoate (TMB-8), ethylene glycol-bis$({/beta}-amino\;ethyl ether)-N,N,N'$, N'-tetra acetic acid (EGTA), and nifedifine partially blocked the inhibitory effects of ANG II on $Na^+$ uptake. When ANG II and bradykinin (BK) were treated together, $Na^+$ uptake was further reduced $(88.47{\pm}1.98%\;of\;that\;of\;ANG\;II,\;81.85{\pm}1.84%\;of\;that\;of\;BK)$. In addition, W-7 and KN-62 blocked the ANG II-induced inhibition of $Na^+$ uptake. Arachidonic acid reduced $Na^+$ uptake in a dose-dependent manner. When ANG II and arachidonic acid were treated together, inhibitory effects on $Na^+$ uptake significantly exhibited greater reduction than that of each group, respectively. When PTCs were treated by mepacrine $(10^{-6}\;M)$ and AACOCF3 $(10^{-5}\;M)$ for 1 hr before the addition of $(<10^{-9}\;ANG\;II)$, the inhibitory effect of ANG II was reversed. In addition, econazole $(>10^{-6}\;M)$ blocked ANG II-induced inhibition of $Na^+$ uptake. In conclusion, the $[Ca^{2+}]_i$ (calcium-calmodulin-dependent kinase) and phospholipase $A_2\;(PLA_2)$ metabolites are involved in the inhibitory effects of ANG II on $Na^+$ uptake in the PTCs.

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사람 암세포와 단핵세포에서 고포도당 농도에 의한 FDG 섭취 저하의 서로 다른 기전 (Decreased glucose uptake by hyperglycemia is regulated by different mechanisms in human cancer cells and monocytes)

  • 김채균;정준기;이용진;홍미경;정재민;이동수;이명철
    • 대한핵의학회지
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    • 제36권2호
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    • pp.110-120
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    • 2002
  • 목적: FDG PET은 악성종양의 진단에 유용하게 쓰이고 있으나, 염증에도 섭취되어 진단에 어려움이 있다. 염증에서 F-18-FDG 섭취는 단핵세포에서 포도당대사가 항진되어 나타난다. 이 연구에서는 사람의 암세포와 단핵세포간에 포도당대사에 차이가 있는지 알아보고자 하였다. 대상 및 방법: 사람의 대장암 세포주(SNU-C2A, SNU-C4, SNU-C5)와 폐암 세포주(NCI-H522), 단핵세포를 포도당 농도가 다른 배지에서 각각 배양시키고, FDG 섭취와 포도당운반체 1(Glut1)의 발현, hexokinase 활성도의 변화를 비교 분석하였다. 결과: 포도당이 없는 배지에서는 암세포와 단핵세포 모두에서 FDG 섭취가 증가되나 포도당 고농도(16.7 mM)에서는 섭취가 감소하였다. 이 고농도에서 Glut1 mRNA의 발현은 대장암 세포주, 폐암 세포주에서 감소하였다. 고농도의 포도당 배지에서 Glut1 단백질의 발현도 4종류의 암세포에서 모두 감소하였으나, 단핵세포에서는 변화가 없었다. SNU-C2A, SNU-C4, NCI-H522 세포에서 hexokinase의 활성도는 비슷하였고, 단핵세포와 SNU-C5에서는 약간 증가하였다. 결론: 포도당 섭취에 있어서 사람의 암 세포주와 단핵세포는 서로 다른 기전을 보이고 있다. 대장암 세포는 포도당 농도에 의한 포도당 섭취 변화가 Glut1에 의하여 조절되나, 단핵세포는 다른 기전을 가지고 있다.

Synthesis and In vitro Evaluation of 99mTc-diglucosediethylenetriamine (DGTA) as a Potential Tumor Imaging Agent

  • Lee, Sang-Ju;Oh, Seung-Jun;Kim, Jung-Young;Ryu, Jin-Sook;Kim, Seog-Young;Moon, Dae-Hyuk
    • Bulletin of the Korean Chemical Society
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    • 제32권7호
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    • pp.2410-2412
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    • 2011
  • Using a single step chemical synthesis, we synthesized the potential tumor imaging agent $^{99m}Tc$-diglucose-diethylenetriamine (DGTA) from diethylenetriamine and natural D-glucose. 10 min Incubation of 10 mg of precursor with 50 ${\mu}g$ of $SnCl_2{\cdot}2H_2O$ at room temperature yielded over 95% of $^{99m}Tc$ labeling. The stability for 6 hours in saline or human plasma was over 90%. In vitro tumor cell uptake assays using the SNU-C5 and 9 L cell lines showed that, in 0-400 mg/dL glucose medium, cell uptake of $^{99m}Tc$-DGTA was 1.5-8 times higher than that of [$^{18}F$]FDG. Moreover, [$^{18}F$]FDG uptake was dependent on glucose concentration in the medium, whereas cellular uptake of $^{99m}Tc$-DGTA was not dependent on glucose concentration, suggesting that the two compounds have different uptake mechanisms by tumor cells.

Tyromyces palustris를 이용한 구리의 제거 (Copper Uptake by Tyromyces palustris)

  • 손동원;이동흡;강창호
    • Journal of the Korean Wood Science and Technology
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    • 제26권1호
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    • pp.57-62
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    • 1998
  • In this research, the removal or uptake of heavy metals such as coppers by using oxalic acid metabolism of wood rot fungi, Tyromyces palustris were endeavored. As results, the addition of oxalic acid to copper containing culture did not cause the mycelium growth, but Tyromyces palustris was able to grow in this culture without inhibition. Tyromyces palustris grew with the cicular halo type in copper containing culture, and this type was formed as collectives after examining by microscope, and considered as copper oxalates by analyzing FT-IR comparison experiment with standards. According to this result, Tyromyces palustris has secreted oxalic acid during incubation, this secreted oxalic acid was combined with coppers, and formed copper oxalates by chelating reactions. In other words, the oxalic acid was might be as non-toxifying agent of coppers in medium. By using this copper removal mechanisms, Tyromyces palustris immobilized sawdust was used in bench scale air lift system for removing coppers. The added coppers were almost removed from the system within 72hrs. Therefore, this nonenzymatic wood degradation mechanism may give a possibility for removing coppers from copper containing waste water.

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Regulation of Blood Glucose Homeostasis during Prolonged Exercise

  • Suh, Sang-Hoon;Paik, Il-Young;Jacobs, Kevin A.
    • Molecules and Cells
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    • 제23권3호
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    • pp.272-279
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    • 2007
  • The maintenance of normal blood glucose levels at rest and during exercise is critical. The maintenance of blood glucose homeostasis depends on the coordination and integration of several physiological systems, including the sympathetic nervous system and the endocrine system. During prolonged exercise increased demand for glucose by contracting muscle causes to increase glucose uptake to working skeletal muscle. Increase in glucose uptake by working skeletal muscle during prolonged exercise is due to an increase in the translocation of insulin and contraction sensitive glucose transporter-4 (GLUT4) proteins to the plasma membrane. However, normal blood glucose level can be maintained by the augmentation of glucose production and release through the stimulation of liver glycogen breakdown, and the stimulation of the synthesis of glucose from other substances, and by the mobilization of other fuels that may serve as alternatives. Both feedback and feedforward mechanisms allow glycemia to be controlled during exercise. This review focuses on factors that control blood glucose homeostasis during prolonged exercise.

Both $^{45}Ca^{2+}$ Uptake and $^{45}Ca^{2+}$ Release were Decreased in the Junctional Sarcoplasmic Reticulum Vesicles of Diabetic Heart

  • Kim, Won-Tae;Cho, Kwang-Hyun;Kim, Hae-Won;Kim, Young-Kee
    • 한국생물물리학회:학술대회논문집
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    • 한국생물물리학회 1996년도 정기총회 및 학술발표회
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    • pp.40-40
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    • 1996
  • Abnormally high $Ca^{2+}$ concentrations have been reported in the cardiac myocytes of diabetic mellitus (DM). In order to elucidate the molecular mechanisms of the intracellular $Ca^{2+}$ overload, the activities of $^{45}$ Ca$^{2+}$ uptake and $^{45}$ Ca$^{2+}$ release were measured from the vesicles of junctional SR (Heavy SR, HSR). (omitted)omitted)

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