地址:武汉市洪山区光谷大道35号光谷总部国际时代 二期1栋1301
电话:18995651644
传真:18995651644
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艾美捷科技有限公司代理SIRIUS FINE CHEMICALS SICHEM GMBH公司产品。
SIRIUS FINE CHEMICALS SICHEM GMBH公司,主要提供:
点击化学工具(Si-CLICK (Click Chemistry))
PEG试剂(Si-PEGs)
脂质及其衍生物(Si-LIPs (Lipids & Derivatives))
磷酸肌醇试剂(Inositol Phosphates & Phosphoinositides)
核酸及其衍生物(Nucleotides & Derivatives)
API标准品及代谢底物(API Standards & Metabolites)
稳定的同位素(Stable Isotopes)
磷酸化及亚磷酸化试剂(Phosphorylation / Phosphitylation)
精细化学试剂(Fine Chemicals)
更多详情请联系
艾美捷科技有限公司
全国服务热线:400-6800-868
邮箱:sales@amyjet.com
网站:www.amyjet.com
产品列表
| 产品名称 | 产品编号 | 分子式 |
| Click Amino Acid / trans-Cyclooct-4-en – L - Lysine (TCO4/EQ) / EQUATORIAL isomer | SC-8060 | C15H26N2O4 |
| bifunctional Cross-Linking-Amino-Acid / PrDiAzK | SC-8028 | C13H20N4O5 |
| Click Amino Acid / exo-BCN – Fmoc – L - Lysine (BCN) | SC-8038 | C32H36N2O6 |
| Cross-Linking-Amino-Acid / DiAzK | SC-8034 | C11H20N4O4 |
| Click-Amino-Acid / N3-Lys | SC-8027 | C9H17N5O4 |
| Click Amino Acid / cyclopropene – L - Lysine (CP) | SC-8017 | C12H20N2O4 |
| Click Amino Acid / endo-BCN – Fmoc – L - Lysine (BCN) | SC-8015 | C32H36N2O6 |
| Click Amino Acid / trans-Cyclooct-2-en – L - Lysine (TCO*A) | SC-8008 | C15H26N2O4 |
| Click Amino Acid / exo BCN - L - Lysine | SC-8016 | C17H26N2O4 |
| Click Amino Acid / Norbonene-CH2 – L - Lysine (NBO) | SC-8006 | C15 H24 N2 O4 * HCl |
| Click Amino Acid / rac BCN - L - Lysine | SC-8003 | C17H26N2O4 |
| Click Amino Acid / trans-Cyclooct-4-en – L - Lysine (TCO4) / AXIAL isomer | SC-8004 | C15H26N2O4 |
| Click Amino Acid / endo BCN - L - Lysine | SC-8014 | C17H26N2O4 |
| Click-Amino-Acid / PrK - HCl-salt | SC-8002 | C10H16N2O4 * HCl |
| Click Amino Acid (99%) / SCO - L - Lysine - HCO2H-salt | SC-8001 | C15H24N2O4* HCO2H |
| Click Amino Acid (95%) / SCO - L - Lysine - HCO2H-salt | SC-8000 | C15H24N2O4 * HCO2H |
| SCO-NHS carbonate | SC-8076 | C13H15NO5 |
| exo-BCN-NHS carbonate | SC-8075 | C15H17NO5 |
| endo-BCN-NHS carbonate | SC-8074 | C15H17NO5 |
| SCO-PEG7-Maleimide | SC-8305 | C32H51N3O12 |
| SCO-PEG3-Maleimide | SC-8304 | C24H35N3O8 |
| SCO-PEG2-Maleimide | SC-8303 | C22H31N3O7 |
| BCN-exo-PEG7-Maleimide | SC-8205 | C34H53N3O12 |
| BCN-exo-PEG3-Maleimide | SC-8204 | C24H33N3O7 |
| BCN-exo-PEG2-Maleimide | SC-8203 | C24H33N3O7 |
| BCN-endo-PEG7-Maleimide | SC-8105 | C34H53N3O12 |
| BCN-endo-PEG3-Maleimide | SC-8104 | C24H33N3O7 |
| BCN-endo-PEG2-Maleimide | SC-8103 | C24H33N3O7 |
| BCN-exo-PEG8-COOH | SC-8211 | C30H51NO12 |
| BCN-exo-PEG4-COOH | SC-8210 | C22H35NO8 |
| BCN-exo-PEG3-COOH | SC-8209 | C20H31NO7 |
| BCN-exo-PEG8-NHS | SC-8208 | C34H54N2O14 |
| BCN-exo-PEG4-NHS | SC-8207 | C26H38N2O10 |
| BCN-exo-PEG3-NHS | SC-8206 | C24H34N2O9 |
| BCN-endo-PEG3-NHS | SC-8106 | C24H34N2O9 |
| BCN-endo-PEG4-NHS | SC-8107 | C26H38N2O10 |
| BCN-endo-PEG8-NHS | SC-8108 | C34H54N2O14 |
| BCN-endo-PEG8-COOH | SC-8111 | C30H51NO12 |
| BCN-endo-PEG4-COOH | SC-8110 | C22H35NO8 |
| BCN-endo-PEG3-COOH | SC-8109 | C20H31NO7 |
| SCO-PEG3-COOH | SC-8309 | C18H29NO7 |
| SCO-PEG4-COOH | SC-8310 | C20H33NO8 |
| SCO-PEG8-COOH | SC-8311 | C28H49NO12 |
| SCO-PEG8-NHS | SC-8308 | C32H52N2O14 |
| SCO-PEG4-NHS | SC-8307 | C24H36N2O10 |
| SCO-PEG3-NHS | SC-8306 | C22H32N2O9 |
| SCO-PEG7-NH2 | SC-8302 | C25H46N2O9 |
| SCO-PEG3-NH2 | SC-8301 | C17H30N2O5 |
| SCO-PEG2-NH2 | SC-8300 | C15H26N2O4 |
| BCN-exo-PEG2-NH2 | SC-8200 | C17H28N2O4 |
| BCN-exo-PEG3-NH2 | SC-8201 | C19H32N2O5 |
| BCN-exo-PEG7-NH2 | SC-8202 | C27H48N2O9 |
| BCN-endo-PEG7-NH2 | SC-8102 | C27H48N2O9 |
| BCN-endo-PEG3-NH2 | SC-8101 | C19H32N2O5 |
| BCN-endo-PEG2-NH2 | SC-8100 | C17H28N2O4 |
| exo BCN - OH | SC-8033 | C10 H14 O |
| SCO - active ester (p-NPE) | SC-8032 | C15H15NO5 |
| SCO - OH | SC-8030 | C8H12O |
| endo BCN - OH | SC-8029 | C10 H14 O |
| exo BCN - active ester (p-NPE) | SC-8010 | C17H17NO5 |
| TCO4 - NHS carbonate / EQUATORIAL isomer | SC-8073 | C13H17NO5 |
| TCO4 - NHS carbonate / AXIAL isomer | SC-8072 | C13H17NO5 |
| (E)-cyclooct-4-enol / axial - TCO4 / A | SC-8018 | C8H14O |
| TCO4-PEG8-COOH | SC-8411 | C28H51NO12 |
| TCO*-PEG8-COOH | SC-8511 | C28H51NO12 |
| TCO*-PEG4-COOH | SC-8510 | C20H35NO8 |
| TCO4-PEG4-COOH | SC-8410 | C20H35NO8 |
| TCO4-PEG3-COOH | SC-8409 | C18H31NO7 |
| TCO*-PEG3-COOH | SC-8509 | C20H31NO7 |
| TCO*-PEG8-NHS | SC-8508 | C32H54N2O14 |
| TCO4-PEG8-NHS | SC-8408 | C32H54N2O14 |
| TCO4-PEG4-NHS | SC-8407 | C24H38N2O10 |
| TCO*-PEG4-NHS | SC-8507 | C24H38N2O10 |
| TCO*-PEG3-NHS | SC-8506 | C22H34N2O9 |
| TCO4-PEG3-NHS | SC-8406 | C22H34N2O9 |
| TCO*-PEG7-Maleimide | SC-8505 | C32H53N3O12 |
| TCO*-PEG3-Maleimide | SC-8504 | C24H37N3O8 |
| TCO*-PEG2-Maleimide | SC-8503 | C22H33N3O7 |
| TCO4-PEG7-Maleimide | SC-8405 | C32H53N3O12 |
| TCO4-PEG3-Maleimide | SC-8404 | C24H37N3O8 |
| TCO4-PEG2-Maleimide | SC-8403 | C22H33N3O7 |
| TCO*-PEG2-NH2 | SC-8500 | C15H28N2O4 |
| TCO*-PEG3-NH2 | SC-8501 | C17H32N2O5 |
| TCO*-PEG7-NH2 | SC-8502 | C25H48N2O9 |
| TCO4-PEG7-NH2 | SC-8402 | C25H48N2O9 |
| TCO4-PEG3-NH2 | SC-8401 | C17H32N2O5 |
| TCO4-PEG2-NH2 | SC-8400 | C15H28N2O4 |
| (E)-cyclooct-4-en active ester / TCO/E- active ester (p-NPE) / equatorial | SC-8024 | C15H17NO5 |
| (E)-cyclooct-4-en active ester / TCO4 / A- active ester (p-NPE) / axial | SC-8019 | C15H17NO5 |
| TCO*A - active ester (p-NPE) | SC-8007 | C15H17NO5 |
| Fluorescent-PEG8-Me-Tet | SC-8817 | C54H68N8O13 |
| Fluorescent-PEG4-Me-Tet | SC-8816 | C46H52N8O9 |
| Fluorescent-PEG3-Me-Tet | SC-8815 | C44H48N8O8 |
| Me-Tet-PEG8-NHBoc | SC-8820 | C34H56N6O11 |
| Me-Tet-PEG4-NHBoc | SC-8819 | C26H40N6O7 |
| Me-Tet-PEG3-NHBoc | SC-8818 | C24H36N6O6 |
| Biotin-PEG8-Me-Tet | SC-8814 | C39H62N8O11S |
| Biotin-PEG4-Me-Tet | SC-8813 | C31H46N8O7S |
| Biotin-PEG3-Me-Tet | SC-8812 | C29H42N8O6S |
| Me-Tet-PEG9-COOH | SC-8811 | C32H51N5O12 |
| Me-Tet-PEG5-COOH | SC-8810 | C24H35N5O8 |
| Me-Tet-PEG4-COOH | SC-8809 | C22H31N5O7 |
| Me-Tet-PEG9-NHS | SC-8808 | C36H54N6O14 |
| Me-Tet-PEG5-NHS | SC-8807 | C28H38N6O10 |
| Me-Tet-PEG4-NHS | SC-8806 | C26H34N6O9 |
| Me-Tet-PEG8-Maleimide | SC-8805 | C36H53N7O12 |
| Me-Tet-PEG4-Maleimide | SC-8804 | C28H37N7O8 |
| Me-Tet-PEG3-Maleimide | SC-8803 | C26H33N7O7 |
| Me-Tet-PEG8-NH2 - HCl salt | SC-8802 | C29H48N6O9 + HCl |
| Me-Tet-PEG4-NH2 | SC-8801 | C21H32N6O5 |
| Me-Tet-PEG3-NH2 | SC-8800 | C19H28N6O4 |
| Aminopentyl - Tetrazine - HCl-salt | SC-1193 | C18H20N8O * HCl |
| Tetrazine active ester (Tetrazine-NHS) | SC-1194 | C17H11N7O4 |
| Aminopropyl - Tetrazine - HCl-salt | SC-1192 | C16H16N8O * HCl |
| Methyl-Tetrazine - Amine- HCO2H-salt | SC-1191 | C10H11N5* HCO2H |
| Tetrazine - Amine - HCO2H-salt | SC-1190 | C9H9N5 * HCO2H |
| N3-PEG8-t-butyl ester | SC-8923 | C23H45N3O10 |
| N3-PEG5-t-butyl ester | SC-8922 | C17H33N3O7 |
| N3-PEG4-t-butyl ester | SC-8921 | C15H29N3O6 |
| N3-PEG3-t-butyl ester | SC-8920 | C13H25N3O5 |
| Boc-N-Amido-PEG7-N3 | SC-8912 | C21H42N4O9 |
| Boc-N-Amido-PEG3-N3 | SC-8911 | C13H26N4O5 |
| Boc-N-Amido-PEG2-N3 | SC-8910 | C11H22N4O4 |
| Boc-N-Amido-PEG4-Alkyne | SC-8900 | C16H29NO6 |
| Boc-N-Amido-PEG3-Alkyne | SC-8039 | C14H25NO5 |
| TAMRA-PEG8-Alkyne | SC-8717 | C44H57N3O12 |
| TAMRA-PEG4-Alkyne | SC-8716 | C36H41N3O8 |
| TAMRA-PEG3-Alkyne | SC-8715 | C34H37N3O7 |
| TAMRA-PEG7-N3 | SC-8714 | C41H54N6O11 |
| TAMRA-PEG3-N3 | SC-8713 | C33H38N6O7 |
| TAMRA-PEG2-N3 | SC-8712 | C31H34N6O6 |
| Biotin-PEG8-Alkyne | SC-8617 | C29H51N3O10S |
| Biotin-PEG4-Alkyne | SC-8616 | C21H35N3O6S |
| Biotin-PEG3-Alkyne | SC-8615 | C19H31N3O5S |
| Biotin-PEG7-N3 | SC-8614 | C26H48N6O9S |
| Biotin-PEG3-N3 | SC-8613 | C18H32N6O5S |
| Biotin-PEG2-N3 | SC-8612 | C16H28N6O4S |
| Click-Amino-Acid / PrK - HCl-salt | SC-8002 | C10H16N2O4 * HCl |
| Alkyne - PEG2 | SC-0063 | C7H12O3 |
| Azido - PEG1 | SC-0062 | C4H9N3O2 |
| Biotin-PEG8-Alkyne | SC-8617 | C29H51N3O10S |
| Biotin-PEG4-Alkyne | SC-8616 | C21H35N3O6S |
| Biotin-PEG3-Alkyne | SC-8615 | C19H31N3O5S |
| Alkyne - PEG2 - TCA | SC-0067 | C9H12Cl3NO3 |
| Alkyne - PEG2 - CM | SC-0065 | C8H13ClO3 |
| Alkyne - PEG2 | SC-0063 | C7H12O3 |
| TAMRA-PEG7-N3 | SC-8714 | C41H54N6O11 |
| TAMRA-PEG3-N3 | SC-8713 | C33H38N6O7 |
| TAMRA-PEG2-N3 | SC-8712 | C31H34N6O6 |
| Biotin-PEG7-N3 | SC-8614 | C26H48N6O9S |
| Biotin-PEG3-N3 | SC-8613 | C18H32N6O5S |
| Biotin-PEG3-CoenzymeA | SC-8618 | C46H75N12O24P3S2+3NH3 |
| Bis-Cyano-PEG9 | SC-8932 | C22H40N2O9 |
| Bis-Cyano-PEG5 | SC-8931 | C14H24N2O5 |
| Bis-Cyano-PEG4 | SC-8930 | C12H20N2O4 |
| N3-PEG8-t-butyl ester | SC-8923 | C23H45N3O10 |
| N3-PEG5-t-butyl ester | SC-8922 | C17H33N3O7 |
| N3-PEG4-t-butyl ester | SC-8921 | C15H29N3O6 |
| N3-PEG3-t-butyl ester | SC-8920 | C13H25N3O5 |
| Boc-N-Amido-PEG7-N3 | SC-8912 | C21H42N4O9 |
| Boc-N-Amido-PEG3-N3 | SC-8911 | C13H26N4O5 |
| Boc-N-Amido-PEG2-N3 | SC-8910 | C11H22N4O4 |
| Boc-N-Amido-PEG4-Alkyne | SC-8900 | C16H29NO6 |
| Boc-N-Amido-PEG3-Alkyne | SC-8039 | C14H25NO5 |
| Fluorescent-PEG8-Me-Tet | SC-8817 | C54H68N8O13 |
| Fluorescent-PEG4-Me-Tet | SC-8816 | C46H52N8O9 |
| Fluorescent-PEG3-Me-Tet | SC-8815 | C44H48N8O8 |
| TAMRA-PEG8-Alkyne | SC-8717 | C44H57N3O12 |
| TAMRA-PEG4-Alkyne | SC-8716 | C36H41N3O8 |
| TAMRA-PEG3-Alkyne | SC-8715 | C34H37N3O7 |
| TAMRA-PEG7-N3 | SC-8714 | C41H54N6O11 |
| TAMRA-PEG3-N3 | SC-8713 | C33H38N6O7 |
| TAMRA-PEG2-N3 | SC-8712 | C31H34N6O6 |
| TAMRA-PEG8-COOH | SC-8711 | C44H59N3O14 |
| TAMRA-PEG4-COOH | SC-8710 | C36H43N3O10 |
| TAMRA-PEG3-COOH | SC-8709 | C34H39N3O9 |
| TAMRA-PEG8-NHS | SC-8708 | C48H62N4O16 |
| TAMRA-PEG4-NHS | SC-8707 | C40H46N4O12 |
| TAMRA-PEG3-NHS | SC-8706 | C38H42N4O11 |
| TAMRA-PEG7-Maleimide | SC-8705 | C48H61N5O14 |
| TAMRA-PEG3-Maleimide | SC-8704 | C40H45N5O10 |
| TAMRA-PEG2-Maleimide | SC-8703 | C38H41N5O9 |
| TAMRA-PEG7-NH2 | SC-8702 | C41H56N4O11 |
| TAMRA-PEG3-NH2 | SC-8701 | C33H40N4O7 |
| TAMRA-PEG2-NH2 | SC-8700 | C31H36N4O6 |
| Me-Tet-PEG8-NHBoc | SC-8820 | C34H56N6O11 |
| Me-Tet-PEG4-NHBoc | SC-8819 | C26H40N6O7 |
| Me-Tet-PEG3-NHBoc | SC-8818 | C24H36N6O6 |
| Biotin-PEG8-Me-Tet | SC-8814 | C39H62N8O11S |
| Biotin-PEG4-Me-Tet | SC-8813 | C31H46N8O7S |
| Biotin-PEG3-Me-Tet | SC-8812 | C29H42N8O6S |
| Me-Tet-PEG9-COOH | SC-8811 | C32H51N5O12 |
| Me-Tet-PEG5-COOH | SC-8810 | C24H35N5O8 |
| Me-Tet-PEG4-COOH | SC-8809 | C22H31N5O7 |
| Me-Tet-PEG9-NHS | SC-8808 | C36H54N6O14 |
| Me-Tet-PEG5-NHS | SC-8807 | C28H38N6O10 |
| Me-Tet-PEG4-NHS | SC-8806 | C26H34N6O9 |
| Me-Tet-PEG8-Maleimide | SC-8805 | C36H53N7O12 |
| Me-Tet-PEG4-Maleimide | SC-8804 | C28H37N7O8 |
| Me-Tet-PEG3-Maleimide | SC-8803 | C26H33N7O7 |
| Me-Tet-PEG8-NH2 - HCl salt | SC-8802 | C29H48N6O9 + HCl |
| Me-Tet-PEG4-NH2 | SC-8801 | C21H32N6O5 |
| Me-Tet-PEG3-NH2 | SC-8800 | C19H28N6O4 |
| Biotin-PEG8-Alkyne | SC-8617 | C29H51N3O10S |
| Biotin-PEG4-Alkyne | SC-8616 | C21H35N3O6S |
| Biotin-PEG3-Alkyne | SC-8615 | C19H31N3O5S |
| Biotin-PEG7-N3 | SC-8614 | C26H48N6O9S |
| Biotin-PEG3-N3 | SC-8613 | C18H32N6O5S |
| Biotin-PEG2-N3 | SC-8612 | C16H28N6O4S |
| Biotin-PEG8-COOH | SC-8611 | C29H53N3O12S |
| Biotin-PEG4-COOH | SC-8610 | C19H33N3O7S |
| Biotin-PEG3-COOH | SC-8609 | C19H33N3O7S |
| Biotin-PEG8-NHS | SC-8608 | C33H56N4O14S |
| Biotin-PEG4-NHS | SC-8607 | C25H40N4O10S |
| Biotin-PEG3-NHS | SC-8606 | C23H36N4O9S |
| Biotin-PEG7-Maleimide | SC-8605 | C33H55N5O12S |
| Biotin-PEG3-Maleimide | SC-8604 | C25H39N5O8S |
| Biotin-PEG2-Maleimide | SC-8603 | C23H35N5O7S |
| Biotin-PEG7-NH2 | SC-8602 | C26H50N4O9S |
| Biotin-PEG3-NH2 | SC-8601 | C18H34N4O5S |
| Biotin-PEG2-NH2 | SC-8600 | C16H30N4O4S |
| TCO4-PEG8-COOH | SC-8411 | C28H51NO12 |
| TCO*-PEG8-COOH | SC-8511 | C28H51NO12 |
| TCO*-PEG4-COOH | SC-8510 | C20H35NO8 |
| TCO4-PEG4-COOH | SC-8410 | C20H35NO8 |
| TCO4-PEG3-COOH | SC-8409 | C18H31NO7 |
| TCO*-PEG3-COOH | SC-8509 | C20H31NO7 |
| TCO*-PEG8-NHS | SC-8508 | C32H54N2O14 |
| TCO4-PEG8-NHS | SC-8408 | C32H54N2O14 |
| TCO4-PEG4-NHS | SC-8407 | C24H38N2O10 |
| TCO*-PEG4-NHS | SC-8507 | C24H38N2O10 |
| TCO*-PEG3-NHS | SC-8506 | C22H34N2O9 |
| TCO4-PEG3-NHS | SC-8406 | C22H34N2O9 |
| TCO*-PEG7-Maleimide | SC-8505 | C32H53N3O12 |
| TCO*-PEG3-Maleimide | SC-8504 | C24H37N3O8 |
| TCO*-PEG2-Maleimide | SC-8503 | C22H33N3O7 |
| TCO4-PEG7-Maleimide | SC-8405 | C32H53N3O12 |
| TCO4-PEG3-Maleimide | SC-8404 | C24H37N3O8 |
| TCO4-PEG2-Maleimide | SC-8403 | C22H33N3O7 |
| TCO*-PEG2-NH2 | SC-8500 | C15H28N2O4 |
| TCO*-PEG3-NH2 | SC-8501 | C17H32N2O5 |
| TCO*-PEG7-NH2 | SC-8502 | C25H48N2O9 |
| TCO4-PEG7-NH2 | SC-8402 | C25H48N2O9 |
| TCO4-PEG3-NH2 | SC-8401 | C17H32N2O5 |
| TCO4-PEG2-NH2 | SC-8400 | C15H28N2O4 |
| SCO-PEG7-Maleimide | SC-8305 | C32H51N3O12 |
| SCO-PEG3-Maleimide | SC-8304 | C24H35N3O8 |
| SCO-PEG2-Maleimide | SC-8303 | C22H31N3O7 |
| BCN-exo-PEG7-Maleimide | SC-8205 | C34H53N3O12 |
| BCN-exo-PEG3-Maleimide | SC-8204 | C24H33N3O7 |
| BCN-exo-PEG2-Maleimide | SC-8203 | C24H33N3O7 |
| BCN-endo-PEG7-Maleimide | SC-8105 | C34H53N3O12 |
| BCN-endo-PEG3-Maleimide | SC-8104 | C24H33N3O7 |
| BCN-endo-PEG2-Maleimide | SC-8103 | C24H33N3O7 |
| BCN-exo-PEG8-COOH | SC-8211 | C30H51NO12 |
| BCN-exo-PEG4-COOH | SC-8210 | C22H35NO8 |
| BCN-exo-PEG3-COOH | SC-8209 | C20H31NO7 |
| BCN-exo-PEG8-NHS | SC-8208 | C34H54N2O14 |
| BCN-exo-PEG4-NHS | SC-8207 | C26H38N2O10 |
| BCN-exo-PEG3-NHS | SC-8206 | C24H34N2O9 |
| BCN-endo-PEG3-NHS | SC-8106 | C24H34N2O9 |
| BCN-endo-PEG4-NHS | SC-8107 | C26H38N2O10 |
| BCN-endo-PEG8-NHS | SC-8108 | C34H54N2O14 |
| BCN-endo-PEG8-COOH | SC-8111 | C30H51NO12 |
| BCN-endo-PEG4-COOH | SC-8110 | C22H35NO8 |
| BCN-endo-PEG3-COOH | SC-8109 | C20H31NO7 |
| SCO-PEG3-COOH | SC-8309 | C18H29NO7 |
| SCO-PEG4-COOH | SC-8310 | C20H33NO8 |
| SCO-PEG8-COOH | SC-8311 | C28H49NO12 |
| SCO-PEG8-NHS | SC-8308 | C32H52N2O14 |
| SCO-PEG4-NHS | SC-8307 | C24H36N2O10 |
| SCO-PEG3-NHS | SC-8306 | C22H32N2O9 |
| SCO-PEG7-NH2 | SC-8302 | C25H46N2O9 |
| SCO-PEG3-NH2 | SC-8301 | C17H30N2O5 |
| SCO-PEG2-NH2 | SC-8300 | C15H26N2O4 |
| BCN-exo-PEG2-NH2 | SC-8200 | C17H28N2O4 |
| BCN-exo-PEG3-NH2 | SC-8201 | C19H32N2O5 |
| BCN-exo-PEG7-NH2 | SC-8202 | C27H48N2O9 |
| BCN-endo-PEG7-NH2 | SC-8102 | C27H48N2O9 |
| BCN-endo-PEG3-NH2 | SC-8101 | C19H32N2O5 |
| BCN-endo-PEG2-NH2 | SC-8100 | C17H28N2O4 |
| PEG-12 | SC-1512 | C24H50O13 |
| PEG-11 | SC-1511 | C22H46O12 |
| PEG-10 | SC-1510 | C20H42O11 |
| PEG-9 | SC-1509 | C18H38O10 |
| PEG-8 | SC-1508 | C16H34O9 |
| Alkyne - PEG2 - TCA | SC-0067 | C9H12Cl3NO3 |
| Azido - PEG2 - TCA | SC-0066 | C6H9Cl3N4O2 |
| Alkyne - PEG2 - CM | SC-0065 | C8H13ClO3 |
| Azido - PEG2 - CM | SC-0064 | C5H10ClN3O |
| Alkyne - PEG2 | SC-0063 | C7H12O3 |
| Azido - PEG1 | SC-0062 | C4H9N3O2 |
| 2-Methyl-Glycerol | SC-0006 | C4H10O3 |
| 2-Stearoyl glycerol | SC-1171 | C21H42O4 |
| 2-Palmitoyl glycerol | SC-1170 | C19H38O4 |
| 2-Myristoyl glycerol | SC-1169 | C17H34O4 |
| 2-Lauroyl glycerol | SC-1168 | C15H30O4 |
| 2-Linoleoyl glycerol | SC-1167 | C21H38O4 |
| 2-Oleoyl-glycerol | SC-1162 | C21H40O4 |
| SH-6 | SC-0045 | C28H57O9P |
| SH-5 | SC-0044 | C29H59O10P |
| Ins(345)P3*3Na | 3-0-345-Na | C6H12Na3O15P3 |
| Ins(1)P*2K | 1-0-1-2K | C6H11K2O9P |
| myo-Inositol – trispyrophosphate | Pyro-Ins-Na | C6H8Na4O21P6 |
| Ins(123456)P6 | 6-0-123456-Na | C6H18O24P6 * xNa*yH2O |
| Ins(23456)P5*10Na | 5-0-23456-Na | C6H7Na10O21P5 |
| Ins(13456)P5*10Na | 5-0-13456-Na | C6H7Na10O21P5 |
| Ins(12456)P5*10Na | 5-0-12456-Na | C6H7Na10O21P5 |
| Ins(12356)P5*10Na | 5-0-12356-Na | C6H7Na10O21P5 |
| Ins(12345)P5*10Na | 5-0-12345-Na | C6H7Na10O21P5 |
| Ins(1345)P4*8Na | 4-0-1345-Na | C6H8Na8O18P4 |
| Ins(136)P3*6Na | 3-0-136-Na | C6H9Na6O15P3 |
| Ins(134)P3*6K | 3-0-134-K | C6H9K6O15P3 |
| Ins(345)P3*3K | 3-0-345-K | C6H12K3O15P3 |
| Ins(145)P3*6K | 3-0-145-K | C6H9K6O15P3 |
| Ins(145)P3*3Li | 3-0-145-Li | C6H12Li3O15P3 |
| Ins(145)P3*6Na | 3-0-145-Na | C6H9Na6O15P3 |
| Ins(135)P3*6Na | 3-0-135-6Na | C6H9Na6O15P3 |
| Ins(1245)P4*8Na | 4-0-1245-Na | C6H8Na8O18P4 |
| INO-4995 | INO-4995 | C50H86O35P4 |
| Bt3-Ins(356)P3 / PM | 3-2-356 | C42H69O30P3 |
| Bt3-Ins(346)P3 / PM | 3-2-346 | C42H69O30P3 |
| Bt3-Ins(146)P3 / PM | 3-2-146 | C42H69O30P3 |
| Bt3-Ins(135)P3 / PM | 3-2-135 | C42H69O30P3 |
| caged-Ins(145)P3 / PM | cag-iso-2-145-10 | C42H64NO31P3 |
| caged-Ins(145)P3 / PM | cag-iso-2-145-100 | C42H64NO31P3 |
| Bt2-Ins(3456)P4 / PM | 4-2-3456 | C46H76O36P4 |
| Bt2-Ins(1456)P4 / PM | 4-2-1456 | C46H76O36P4 |
| Bt2-Ins(1345)P4 / PM | 4-2-1345 | C46H76O36P4 |
| Bt2-Ins(1356)P4 / AM | 4-1-1356 | C38H60O36P4 |
| Bt3-Ins(356)P3 / AM | 3-1-356 | C36H57O30P3 |
| Bt3-Ins(346)P3 / AM | 3-1-346 | C36H57O30P3 |
| Bt3-Ins(146)P3 / AM | 3-1-146 | C36H57O30P3 |
| Bt3-Ins(134)P3 / AM | 3-1-134 | C36H57O30P3 |
| Bt3-Ins(136)P3 / AM | 3-1-136 | C36H57O30P3 |
| Bt3-Ins(135)P3 / AM | 3-1-135 | C36H57O30P3 |
| Bt3-Ins(145)P3 / AM | 3-1-145 | C36H57O30P3 |
| caged-Ins(145)P3 / PM | cag-iso-2-145-10 | C42H64NO31P3 |
| caged-Ins(145)P3 / PM | cag-iso-2-145-100 | C42H64NO31P3 |
| caged-Ins(145)P3O6 | cag-6-145 | C15H18NO19P3Na6 |
| caged-Ins(145)P3 P4 | cag-0-145 | C14H19NO17P3Na3 |
| PtdIns(345)P3 | Ptd-0-345-16 | C41H82O22P4 |
| PtdIns(45)P2 | Ptd-0-45-16 | C41H81O19P3 |
| PtdIns(34)P2 | Ptd-0-34-16 | C41H81O19P3 |
| PtdIns(5)P | Ptd-0-5-16 | C41H80O16P2 |
| PtdIns(4)P | Ptd-0-4-16 | C41H80O16P2 |
| PtdIns(3)P | Ptd-0-3-16 | C41H80O16P2 |
| PtdIns(1)P | Ptd-0-1-16 | C41H79O13P |
| D-myo-Inositol-1,2-O-cyclohexylidene | SC-0088 | C12H20O6 |
| 23:45- diisopropylidene-myo-Inositol | SC-0079 | C12H20O6 |
| 12:56- diisopropylidene-myo-Inositol | SC-0078 | C12H20O6 |
| D-myo-Inositol-2,3-O-cyclohexylidene | SC-0077 | C12H20O6 |
| 1,4-Di-butyryl-23:56-diisopropylidene-myo-Inositol | SC-0076 | C20H32O8 |
| 3,6-Di-butyryl-12:45-diisopropylidene-myo-Inositol | SC-0075 | C20H32O8 |
| 2,3:4,5-Di-O-Iso-1,6-Di-O-Benzyl-Ins | IOB-Ins-2345 | C26H32O6 |
| 1,2:5,6-Di-O-Iso-3,4-Di-O-Benzyl-Ins | IOB-Ins-1256 | C26H32O6 |
| 3,4,5,6-Tetra-O-Benzyl-Ins | TOB-Ins-3456 | C34H36O6 |
| 1,4,5,6-Tetra-O-Benzyl-Ins | TOB-Ins-1456 | C34H36O6 |
| DEAC-dUTP | SC-9002 | C26H31N4O17P3 |
| 35-PAPS-TEA | SC-9000-TEA | C10H15N5O13P2S x 4 C6 H15 N |
| ACPPS-TEA | SC-0068 | C10H13N5O12P2S + C6H5N |
| 25-PAPS-Li | SC-9001-Li | C10H11Li4N5O13P2S |
| 35-PAPS-Li (CAS: 102029-54-9) | SC-9000-Li | C10H11Li4N5O13P2S |
| EdU | SC-0040 | C11H12N2O5 |
| EdUTP-TEA | SC-0039 | C11H15N2O14P3 * 4(C6H15N) |
| EdUTP | SC-0038 | C11H15N2O14P3 |
| 2'-PAP | SC-0037 | C10H17N5O10P2 |
| 2'-PAP-Na | SC-0036 | C10H15N5Na2O10P2 |
| 3'-PAP-Na | SC-0034 | C10H15N5Na2O10P2 |
| 3'-PAP | SC-0035 | C10H17N5O10P2 |
| Vancomycin hexapeptide | SC-1606 | C59H62Cl2N8O23 |
| Didechloro Vancomycin | SC-1605 | C66H77N9O24 |
| Vancomycin Impurity A | SC-1601 | C65H73Cl2N9O24 |
| Vancomycin Impurity D | SC-1604 | C59H62Cl2N8O22 |
| Vancomycin Impurity C | SC-1603 | C53H52Cl2N8O17 |
| Vancomycin Impurity B | SC-1602 | C66H74Cl2N8O25 |
| INO-4995 | INO-4995 | C50H86O35P4 |
| Fidaxomicin - d7 | SC-1157 | C52H67D7Cl2O18 |
| Podophyllotoxin Derivate | SC-0025 | C21H20O8 |
| Podophyllotoxin Derivate | SC-0026 | C21H21NO7 |
| Clopidogrel Impurity 4 | SC-0099 | C16H16ClNO2S * H2SO4 |
| Gestodene Impurity E | SC-0028 | C21H24O3 |
| Fidaxomicin Metabolite OP-1118 | SC-1158 | C48H68Cl2O17 |
| Prasugrel metabolite M6-d3 (stabilzed) | SC-0093 | C27H25D3FNO5S * HCl |
| Prasugrel metabolite M6 | SC-0092 | C19H22FNO3S |
| Clopidogrel Impurity C | SC-0087 | C16H18ClNO2S |
| Clopidogrel Impurity 3 | SC-0086 | C15H17Cl2NO2S |
| Prasugrel active metabolite M3-d3 (stabilzed) | SC-0033 | C27H25D3FNO5S * HCl |
| Prasugrel active metabolite M3 HCl (stabilized) | SC-0029 | C27H28FNO5S * HCl |
| Fidaxomicin - d7 | SC-1157 | C52H67D7Cl2O18 |
| Methyl 4-(2-hydroxyethyl)benzoate-13C6,2D (Ring-13C6,Ethyl-1,2-D2) | SC-0080 | C4 13C6 H10 D2 O3 |
| Anthracene 13C6 | SC-0074 | 13C6C8H8 |
| Phenanthrene 13C6 | SC-0073 | 13C6C8H8 |
| Naphthalene 13C10 | SC-0072 | 13C10H8 |
| Naphthalene 13C6 | SC-0071 | 13C6C4H8 |
| Prasugrel active metabolite M3-d3 (stabilzed) | SC-0033 | C27H25D3FNO5S * HCl |
| 2-Cyanoethyl N,N-diisopropylchlorophosphoramidite | SC-0091 | C9H18ClN2OP |
| Phosphoramidous acid. N.N-bis(1-methylethyl)-. bis(2-cyanoethyl) ester | SC-0061 | C12H22N3O2P |
| Phosphoramidous acid, N,N-bis(1-methylethyl)-, bis(phenylmethyl) ester | SC-1165 | C20 H28 N O2 P |
| Phosphorodiamidous acid. N.N.N'.N'-tetrakis(1-methylethyl)-. phenylmethyl ester | SC-0060 | C19 H35 N2 O P |
| Phosphoramidous acid. N.N-bis(1-methylethyl)-. 2-cyanoethyl [1-(2-nitrophenyl)ethyl] ester) | SC-0059 | C17 H26 N3 O4 P |
| Dichloro N,N-Diisopropylphosphoramidite | SC-0058 | C6 H14 Cl2 N P |
| Phosphoramidous acid. N.N-bis(1-methylethyl)-. bis(9H-fluoren-9-ylmethyl) ester | SC-0057 | C34 H36 N O2 P |
| Di-tert-butyl chloromethyl phosphate | SC-0011 | C9H20ClO4P |
| Di-benzyl chloromethyl phosphate | SC-0010 | C15H16ClO4P |
| TMe-OHB-DAZA | SC-0300 | C29H37N3O6 |
| TEt-OHB-DAZA | SC-0301 | C32H43N3O6 |
| NEmo2E | SC-0201 | C96H138KN18O30S |
| NEmo1 | SC-0200 | C96H138KN18O30S |
| D-Serine-O-phosphate | SC-1810 | C3H8NO6P |
| Ph-CCA-NH2 | SC-1400 | C16H12N2O |
| Menaquinone 8 / MK 8:8 | SC-1230 | C51H72O2 |
| Allyl-Maleimide | SC-1121 | C7H7NO2 |
| Nor-cisapride Derivative | SC-1161 | C17H25Cl2N3O3 |
| AlK - L - Lysine - HCl-salt | SC-8012 | C10H18N2O4* HCl |
| 4-methyl-2,2-bis(trifluoromethyl)oxazolidin-5-one | SC-0098 | C6H5F6NO2 |
| 3-(5-oxo-2,2-bis(trifluoromethyl)oxazolidin-4-yl)propanoic acid | SC-0097 | C8H7F6NO4 |
| 7-(diethylamino)-4-(hydroxymethyl)-coumarin / DEACM | SC-0096 | C14H17NO3 |
| 3-bromo-4-methyl-7-(diethylamino)-coumarin | SC-0095 | C14H16BrNO2 |
| Xanthohumol | SC-0094 | C21H22O5 |
| IEPOX 4 | SC-0090 | C5H10O3 |
| IEPOX 3 | SC-0089 | C5H10O3 |
| 2-C-Methyl-L-Threitol | SC-0085 | C5H12O4 |
| 2-C-Methyl-D-Threitol | SC-0084 | C5H12O4 |
| 2-C-Methyl-L-Erythritol | SC-0083 | C5H12O4 |
| 2-C-Methyl-D-Erythritol | SC-0082 | C5H12O4 |
| 3-Amino-7-(diethylamino)-coumarine | SC-0081 | C13 H16 N2 O2 |
| Chloromethylpropionate | SC-1164 | C4H7ClO2 |
| 2-(2-fluoro-2-methylpropoxy)-2-methylpropan-1-ol | SC-1163 | C8H17FO2 |
| 1,4-Di-butyryl-23:56-diisopropylidene-myo-Inositol | SC-0076 | C20H32O8 |
| 3,6-Di-butyryl-12:45-diisopropylidene-myo-Inositol | SC-0075 | C20H32O8 |
| Y-27632 | SC-0048 | C14H21N3O *2HCl |
| H-1152 | SC-0053 | C16H21N3O2S*2HCl |
| 3,4,5,6-Tetra-O-Benzyl-Ins | TOB-Ins-3456 | C34H36O6 |
| 1,4,5,6-Tetra-O-Benzyl-Ins | TOB-Ins-1456 | C34H36O6 |
| Biotin-PEG3-CoenzymeA | SC-8618 | C46H75N12O24P3S2+3NH3 |
| TMe-OHB-DAZA | SC-0300 | C29H37N3O6 |
| TEt-OHB-DAZA | SC-0301 | C32H43N3O6 |
| SCO-NHS carbonate | SC-8076 | C13H15NO5 |
| endo-BCN-NHS carbonate | SC-8074 | C15H17NO5 |
| TCO4 - NHS carbonate / EQUATORIAL isomer | SC-8073 | C13H17NO5 |
| TCO4 - NHS carbonate / AXIAL isomer | SC-8072 | C13H17NO5 |
| TCO* - NHS carbonate / EQUATORIAL isomer | SC-8071 | C13H17NO5 |
| TCO* - NHS carbonate / AXIAL isomer | SC-8070 | C13H17NO5 |
| NEmo2E | SC-0201 | C96H138KN18O30S |
| NEmo1 | SC-0200 | C96H138KN18O30S |
| bifunctional Cross-Linking-Amino-Acid / PrDiAzK | SC-8028 | C13H20N4O5 |
| Vancomycin hexapeptide | SC-1606 | C59H62Cl2N8O23 |
| Ph-CCA-NH2 | SC-1400 | C16H12N2O |
| Cross-Linking-Amino-Acid / DiAzK | SC-8034 | C11H20N4O4 |
| PEG-9 | SC-1509 | C18H38O10 |
| PEG-8 | SC-1508 | C16H34O9 |
| Click Amino Acid / cyclopropene – L - Lysine (CP) | SC-8017 | C12H20N2O4 |

艾美捷科技代理IHC World品牌。
IHC World公司的产品与服务包括:
(1)抗体:提供多种一抗和二抗,适用于不同靶标和物种。
(2)试剂盒:包括染色试剂盒、检测试剂盒等,简化实验流程。
(3)仪器与设备:提供染色机、切片机等实验室设备。
(4)耗材:如玻片、盖玻片、封片剂等。
(5)定制服务:根据客户需求提供定制抗体开发和优化服务。
IHC World公司的产品应用领域:
(1)癌症研究:用于肿瘤标志物检测和癌症分型。
(2)神经科学:研究神经系统疾病和神经标记物。
(3)传染病研究:检测病原体及其在组织中的分布。
(4)药物开发:评估药物对组织的影响。
" data-original="http://atto.51antibodies.com/template/company/xys_lvse/skin/image/lazyLoad.jpg" alt="艾美捷科技代理IHC World品牌"> 艾美捷科技代理IHC World品牌

艾美捷科技代理Revmab Bioscience品牌。
Revmab Bioscience是一家专注于单克隆抗体药物研发和生产的生物技术公司。公司致力于通过创新的生物技术手段,开发高效、安全的抗体药物,用于治疗自身免疫疾病和感染性疾病。Revmab Bioscience采用高效表达系统,确保抗体的高产量和高纯度;拥有先进的生产工艺和质量控制体系,确保产品的稳定性和一致性;同时具备创新研发能,能够快速开发新型抗体药物。
Revmab公司可提供的产品包括:
(1)单克隆抗体药物:提供多种单克隆抗体药物,用于癌症、自身免疫疾病和感染性疾病的治疗。
(2)生物类似药:开发和生产的生物类似药,用于多种疾病的治疗。
(3)抗体药物偶联物(ADC):提供抗体药物偶联物,用于靶向治疗癌症。
(4)定制抗体开发:根据客户需求,提供定制化的抗体开发服务。
<<< " data-original="http://atto.51antibodies.com/template/company/xys_lvse/skin/image/lazyLoad.jpg" alt="艾美捷科技代理Revmab Bioscience品牌"> 艾美捷科技代理Revmab Bioscience品牌

艾美捷科技代理Viagen Biotech品牌。
Molzym公司致力于提供先进的分子生物学工具和解决方案,以支持全球的研究人员、科学家和生物技术公司在生命科学研究、分子诊断和生物制药领域的工作。公司以其对产品质量的严格把控和对客户需求的深刻理解而受到客户的信赖。
Viagen Biotech致力于开发高质量的DNA提取系统和相关试剂,以支持全球的学术研究、生物技术和制药公司的研究工作。DirectPCR® DNA Extraction System(DirectPCR® DNA提取系统)在业界具有很高的口碑。Viagen Biotech公司的核心产品与技术为DirectPCR® DNA Extraction System:这是一种单管系统,用于从小鼠尾巴、耳片、卵黄囊和培养细胞内快速制备DNA。该系统消除了任何溶液转移或开管步骤,从根本上节省了时间和精力。DirectPCR®试剂不仅介导生物样品的快速溶解,还包含有效抑制原油裂解液的抑制活性的PCR抑制剂,同时最大限度地保持完整的基因组DNA的释放。Viagen Biotech公司其他相关产品包括蛋白酶K溶液、E-Prep DNA提取试剂等在内的多种分子生物学试剂;这些试剂广泛应用于分子生物学实验,特别是在DNA提取和纯化过程中。Viagen Biotech的产品适用于需要进行基因分型和遗传分析的实验室。DirectPCR®试剂特别适合于从小鼠等实验动物中提取DNA,用于发育生物学、遗传学研究等领域。
<<<<<< " data-original="http://atto.51antibodies.com/template/company/xys_lvse/skin/image/lazyLoad.jpg" alt="艾美捷科技代理Viagen Biotech品牌"> 艾美捷科技代理Viagen Biotech品牌
Chemicell公司位于德国柏林,该公司主要进行创新的以纳米级磁珠为基础的生物分离、基因转染&检测系统开发和生产工作。开发的重点在于设计以客户为导向特别兼容了实验室自动化的即用型试剂盒。
chemicell develops and produces innovative bioseparation- gene transfection and detection systems based on magnetic nano- and microparticles. Focus of our product development is to design high quality customer-oriented "ready-to use" kits with special orientation towards the compatibility for labor automatisation. It is chemicell's policy to be open for cooperations with other companies or scientific institutes to maximize the chances and opportunities that evolve from the rapid development of biotechnological procedures and to distribute innovative new products.
主要产品包括:
Magnetofection™
Biomagnetic Separation
Magnetic Microparticles
Magnetic-Fluorescent Microparticles
Magnetic Nanoparticles
Magnetic-Fluorescent Nanoparticles
Microspheres-Non-Magnetic
Silica Microspheres-Non-Magnetic
Silica Fluorescent Microspheres-Non-Magnetic
Magnetic Separators
DNA / RNA Purification
PEG derivates
" data-original="http://atto.51antibodies.com/template/company/xys_lvse/skin/image/lazyLoad.jpg" alt="Chemicell"> Chemicell
<艾美捷科技代理Purepeg品牌全系列产品
PurePEG, LLC是一家致力于为学术和商业用户提供高质量、高纯度单分散聚乙二醇(PEG)及其相关产品的领先供应商,提供具有不同重复单元(间隔基长度)、末端官能团(X 和 Y)以及多种分子结构(线性、支化和多臂型)的产品。PurePEG 凭借多年研发积累的创新 PurePEG 技术,能够生产具有精确分子量的纯净、单分散 PEG。PurePEG 开发了首个用于偶联抗体与毒素(ADC药物)以治疗乳腺癌的酸功能化PEG。PEG因其水溶性、无毒性和非免疫原性等特性,已在生物医学领域确立了重要地位。迄今为止,已有 12 种经 FDA 批准的聚乙二醇化药物用于治疗多种慢性疾病。此外,PurePEG提供从毫克级到公吨级多种PEG产品的高质量定制合成与合同研发服务。

▍Purepeg产品线
PurePEG提供以下相关目录产品:
| Diselenide Linkers | Clickable Linkers | PEG45 | Linker with protecting group |
| Peptide Linkers | BCN Linker | PEG-Lipid | Biotinylation Reagents |
| Polydisperse PEG | BCN linker (non PEG) | PEGylation Reagents | Multi-Arm PEGs |
| PROTAC | Diazirine Linker | Heterobifunctional PEGs | Cleavable Linkers |
| Chelating Agent | Porphyrin | Homobifunctional PEGs | Non-PEG Linkers |
▍Purepeg部分产品列表
| 品名 | 货号 | CAS号 | 分子式 | 分子量 |
| 3,3′-Diselenobispropionic acid | 512371 | 7370-58-3 | C6H10O4Se2 | 304.06 |
| di-tert-butyl 3,3′-diselanediyldipropionate | 512282 | N/A | C14H26O4Se2 | 416.3 |
| 2,2′-diselanediyldiacetic acid | 512361 | 16066-50-5 | C4H6O4Se2 | 276.01 |
| di-tert-butyl 2,2′-diselanediyldiacetate | 512281 | N/A | C12H22O4Se2 | 389.98 |
| Azido-PEG4-Val-Ala-PAB-PNP | 5126604 | N/A | C33H45N7O12 | 731.8 |
| Azido-PEG4-Val-Ala-PAB | 5116604 | N/A | C26H42N6O8 | 566.7 |
| Mal-amide-PEG6-Val-Cit-PAB-OH | 516206 | 3034751-42-0 | C40H63N7O14 | 865.4 |
| Mal-PEG8-amide-Val-Ala-Exatecan | 5116208 | N/A | C58H78FN7O18 | 1179.539 |
| MC-Val-Cit-PAB-PNP | 51057 | 159857-81-5 | C35H43N7O11 | 737.8 |
| MC-Val-Ala-PAB-OH | 51056 | 1870916-87-2 | C25H34N4O6 | 486.56 |
| MC (C5)-Val-Cit | 51055 | 2504147-59-3 | C20H31N5O7 | 453.5 |
| SPDP-Val-Cit-PAB-PNP | 51054 | N/A | C33H39N7O9S2 | 741.8 |
| SPDP-Val-Cit-PAB-OH | 51053 | N/A | C26H36N6O5S2 | 576.7 |
| Alloc-Val-Ala-PAB | 51051 | 1343407-91-9 | C19H27N3O5 | 377.4 |
| DBCO-PEG4-Val-Ala-PAB | 5114804 | 2348405-92-3 | C45H57N5O10 | 827.9 |
| Boc-PEG2-Val-Cit-PAB-OH | 512702 | 2055024-55-8 | C30H50N6O9 | 638.75 |
| endo BCN-PEG3-VC-PFP Ester | 5196303 | 2353409-45-5 | C37H50F5N5O10 | 819.8 |
| endo BCN-PEG3-Val-Cit | 511203 | N/A | C31H51N5O10 | 653.8 |
| Azido-PEG3-Val-Cit-PAB-PNP | 516603 | 2055047-18-0 | C34H47N9O12 | 773.8 |
| Azido-PEG4-Val-Cit-PAB-OH | 516604 | 2055024-64-9 | C29H48N8O9 | 652.8 |
| Boc-PEG4-Val-Cit-PAB-OH | 512704 | 2055024-54-7 | C34H58N6O11 | 726.86 |
| Boc-PEG6-Val-Cit-PAB-OH | 512706 | 2055024-53-6 | C38H66N6O13 | 814.96 |
| 6-Azidohexanoyl-Val-Cit-PAB | 51047 | 1613321-01-9 | C24H38N8O5 | 518.61 |
| DBCO-PEG4-Val-Cit-PAB-PNP | 514804 | 2226472-28-0 | C55H66N8O15 | 1079.2 |

艾美捷科技代理SWISSCI品牌。
SWISSCI为科学家提供创新的实验室解决方,涉及领域包括晶体学(Crystallography)、冷冻电镜(Cryo EM)、细胞培养(Cell Culture)、数据收集(Data Collection)、PCR 耗材、超滤(Ultrafiltration)、透析(Dialysis)、晶体成像系统(Crystal Imaging Systems)以及其他独特的定制化解决方案。热门产品包括48 孔坐滴结晶板、96 孔坐滴结晶板、96 孔悬滴结晶板、封板膜,冷冻电镜,Grid Box,渗析, 超滤装置等。
核心专业领域:
(1)晶体学(Crystallography):提供用于蛋白质晶体学研究的耗材和设备,支持晶体生长、成像和分析。产品包括晶体板、晶体成像系统和相关配件。
(2)冷冻电镜(Cryo EM):为冷冻电镜样品制备提供高质量的耗材,如载网、样品支架和冷冻保护剂。这些产品有助于提高样品制备的效率和成像质量。
(3)细胞培养(Cell Culture):提供用于细胞培养的耗材和设备,包括培养板、培养瓶和培养基。支持细胞生长、分化和功能研究。
(4)数据收集(Data Collection):提供用于实验数据收集的设备和工具,支持高效、精确的数据记录和分析。
(5)PCR 耗材:提供高质量的 PCR 板、管和密封膜,适用于基因扩增和分子生物学研究。
(6)超滤(Ultrafiltration)和透析(Dialysis):提供用于蛋白质纯化、浓缩和缓冲液交换的超滤和透析设备。
(7)晶体成像系统(Crystal Imaging Systems):提供高分辨率的晶体成像设备,支持晶体生长过程的实时监测和分析。
<艾美捷科技代理Nanomed3D品牌全系列产品
Nanomed3D是一家专注于纳米生物技术的公司,致力于设计和生产用于研究、医疗器械和未来疗法的专有功能化自组装肽。公司拥有一支多学科团队,在神经再生、组织工程、纳米医学和材料科学等领域拥有二十多年的专业知识,涵盖纳米材料、干细胞收获和移植、GMP生产、分子建模、静电纺丝、药物释放、肽合成、新型生物辅体的体外和体内测试等多个方面。

▍Nanomed3D产品线
● ASSAP水凝胶:
ASSAP水凝胶即抗扩散自组装肽水凝胶,是一种合成基质,由标准合成氨基酸(1% w/v)和99%水的明确混合物组成。核心成分为抗扩散自组装肽(ASSAP)。在生理条件下,肽组分自组装成3D水凝胶,呈现出纳米级纤维结构。作用机制与优势主要包括以下几个方面:
①抑制细胞扩散:其纳米结构亲水水凝胶能够有效抑制细胞粘附和扩散,同时提供纳米结构合成微环境。这种特性使得它可以根据特定细胞类型进行调整,从而培养出“难以培养”的细胞,如肺、乳腺和结肠干细胞。
②模仿生理生态位:作为第一个可供分发的Nanomed3D SAP,ASSAP提供了细胞外基质的典型纳米结构形貌,模仿了组织中发现的干细胞的生理生态位。它最大限度地减少细胞扩散,而不阻止细胞低附着,促进了细胞的增殖并保留了细胞的干性。
| Name | Size | Solvent | Regulatory Status | Storage |
| ASSAP Hydrogel | 5 mL | dH2O | RUO | +2 – +6° C |
| ASSAP Hydrogel | 10 mL | dH2O | RUO | +2 – +6° C |
● PASAP水凝胶:
PASAP 水凝胶是一种合成基质,用于为多种细胞培养实验创建特定的三维(3D)微环境。PASAP 纳米结构亲水性水凝胶具有多种功能化特性,能够促进多种细胞(如神经干细胞、间充质干细胞、内皮细胞和成纤维细胞)的附着、分化和存活。PASAP 具有细胞外基质特有的纳米结构形貌,从而模拟活组织中细胞周围的生理微环境。
| Name | Size | Solvent | Regulatory Status | Storage |
| PASAP Hydrogel | 5 mL | dH2O | RUO | +2 – +6° C |
| PASAP Hydrogel | 10 mL | dH2O | RUO | +2 – +6° C |
● 定制水凝胶:
定制范围涵盖纳米结构支架的化学连接、生物力学调节、仿生模拟以及孔隙率设计。根据需求,还可通过静电纺丝制成固态、具有柔韧性且形状各异的框架。

● Nanomed3D 纳米保湿剂:
这种水凝胶具备卓越的保湿性能,同时还能促进皮肤中胶原蛋白与弹性蛋白的生成,采用纯合成成分,不含有害物质。

艾美捷科技有限公司代理Lonza的生命科学相关产品,包括:
(1)Primary and Stem Cells - 原代及干细胞
(http://www.amyjet.com/Index/lists/catid/27/kid/19/p/48.html)
(2)Transfection - 转染系列产品
(http://www.amyjet.com/Index/lists/catid/27/kid/19/p/39.html)
(3)Endotoxin Detection - 内毒素检测相关产品
(http://www.amyjet.com/Index/lists/catid/27/kid/19/p/33.html)
(4)Electrophoresis - 电泳相关产品
(http://www.amyjet.com/Index/lists/catid/27/kid/19/p/25.html)
(5)Culture Medium and Reagents - 细胞培养基及相关试剂
(http://www.amyjet.com/Index/lists/catid/27/kid/19/p/5.html)
(6)Cell Analysis - 细胞分析相关产品
(http://www.amyjet.com/Index/lists/catid/27/kid/19/p/4.html)
(7)ADME and Toxicology - ADME及毒理学相关产品
(http://www.amyjet.com/Index/lists/catid/27/kid/19/p/2.html)
(8)3D Culture Products - 3D细胞培养相关产品
(http://www.amyjet.com/Index/lists/catid/27/kid/19/p/1.html)
LONZA(龙沙):瑞士的制药化工巨头,龙沙集团是一家以生命科学为主导,在生物化学、精细化工、功能化学等行业均处于领先地位的全球性跨国公司,具有一百多年历史,总部位于瑞士巴塞尔,在欧洲、美洲、亚洲总共有35个研发和生产中心,其中LONZA的大部分生物技术产品在美国研发生产。LONZA(龙沙)主要生产生命科学产品以及多种类的精细和特殊化工产品,以高科技生物技术与优质产品闻名世界。
Lonza is one of the world’s leading and most-trusted suppliers to the pharmaceutical, biotech and specialty ingredients markets. As an integrated solutions provider, Lonza is boosting its value creation along and beyond the healthcare continuum with a strong focus on patient healthcare, consumer preventive healthcare and consumer's healthy environment. Lonza harnesses science and technology to create products that support safer and healthier living and that enhance the overall quality of life. With the recent Capsugel acquisition, Lonza now offers products and services from the custom development and manufacturing of active pharmaceutical ingredients to innovative dosage forms for the pharma and consumer health and nutrition industries.



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艾美捷科技有限公司
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艾美捷科技代理Gene Tools品牌
Gene Tools是一家生产和销售Morpholino Anti-sense oligos(反义寡核苷酸)的公司,其产品专门用于基因调控的科学研究和药物开发。Gene Tools公司由多位资深科学家组成,为全球客户提供免费的技术咨询和Morpholino 序列设计服务。 Morpholino作为基因调控研究的最佳工具,已被广泛用于:阻断靶mRNA 翻译 (下调基因);诱导RNA选择性剪接 (下调或上调基因);阻断 miRNA;阻断病毒 RNA;阻断 non-coding RNA。
▍Morpholino介绍
Morpholino属于第三代反义寡核苷酸,主要通过阻断蛋白质翻译过程而达到抑制目标基因功能的作用,目前已经广泛用于发育生物学和细胞学实验中,并取得了非常好的实验效果。
Morpholino以吗啉环类似物为基本骨架,这种独特的结构特性使得Morpholino 具有以下几个特点:
● 与其他类型的反义寡核苷酸相比,Morpholino 能更好地抵抗核酸酶的作用;
● Morpholino 与靶序列结合后通过空间位阻效应发挥作用, 不激活RNaseH,不引起目标基因mRNA 的降解 ;
● 针对翻译起始位点区设计的Morpholino 用于抑制蛋白质的翻译,针对 pre-mRNA 剪切位点区设计的Morpholino 可影响mRNA 剪切,得到不 同的转录本,可以方便地用于目标基因结构域的突变研究;
● 与靶序列结合能力强,可以渗入mRNA 的二级结构, 并且特异性好。
配合Morpholino 的使用,Gene Tools公司开发了相应的递送系统,可以安全、高效地将Morpholino 输送至胞内,因此,Morpholino 也可以用于遗传学研究和新药靶标的发现以及验证。此外,Morpholino 可以标上荧光基团、亲和标签以及活性反应基团,以供不同的研究需要。

▍Gene Tools公司产品介绍
● Custom Morpholino:可以根据目标基因序列定制设计并合成Morpholino,用于体外细胞实验或某些直接显微注射的模型(如斑马鱼、非洲爪蟾胚胎)。
● Vivo-Morpholino:适用于活体动物模型(小鼠,大鼠,狗,灵长类等),细胞培养,器官培养等。通过特殊的末端修饰,提高了其穿透细胞膜进入组织细胞的能力,使得在成年动物(主要是小鼠、大鼠)中进行系统性基因功能研究成为可能。
● Prepared Control Oligos:根据特定需求合成细胞穿透肽偶联的 Morpholino。适用于活体动物模型(小鼠,大鼠,狗,灵长类等),细胞培养,器官培养等。
| 产品名称 | Short Description | Oligo sequence | SKU |
| Standard Control Oligo | Negative control oligo | CCTCTTACCTCAGTTACAATTTATA | PCO-StandardControl-100 |
| Vivo-Morpholino Standard Control Oligo | Negative Vivo-Morpholino control oligo | CCTCTTACCTCAGTTACAATTTATA | PCO-VivoStandardControl-100 |
| Random Control Oligo 25-N | 25-base random sequence mixture | NNNNNNNNNNNNNNNNNNNNNNNNN | PCO-RandomControl-25N-100 |
| Zebrafish p53 oligo | Danio rerio apoptosis suppression oligo | GCGCCATTGCTTTGCAAGAATTG | PCO-ZebrafishP53-100 |
| Zebrafish Chordin Positive Control Oligo | Danio rerio Chordin positive control oligo | ATCCACAGCAGCCCCTCCATCATCC | PCO-ZebrafishChordin-100-F |
| Clawed Frog Beta Catenin Positive Control Oligo | Xenopus laevis Beta Catenin antisense oligo | TTTCAACCGTTTCCAAAGAACCAGG | PCO-BetaCatenin-100-F |
| Green Fluorescent Protein Positive Control | Translation blocker for GFP target | ACAGCTCCTCGCCCTTGCTCACCAT | PCO-GFPControl-100 |
| Vivo-Morpholino GFP Positive Control | Translation blocker for GFP target (Vivo-Morpholino) | ACAGCTCCTCGCCCTTGCTCACCAT | PCO-VivoGFPControl-100 |
| Fluoresceinated Vivo-Morpholino Std Control | Negative Vivo-Morpholino control oligo with 5'Fluorescein | CCTCTTACCTCAGTTACAATTTATA | PCO-FluorVivoStandardControl-100-F |
● Endo-Porter:为了解决Morpholino在体外培养细胞中摄取效率低的问题,Gene Tools 开发了 Endo-Porter 这种特殊的转染试剂。它通过温和的内吞体逃逸机制帮助Morpholino进入细胞质。
地址:武汉市洪山区光谷大道35号光谷总部国际时代 二期1栋1301
电话:15172469628
传真:18771997407
邮箱:sales@amyjet.com
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