-
菊糖
NMR and HPLC COA下载 MSDS下载 - Names:
Inulin
- CAS号:
9005-80-5
MDL Number: MFCD00866241 - MF(分子式): C6nH10nO5n MW(分子量): 285.303
- EINECS:232-684-3 Reaxys Number:
- Pubchem ID: Brand:BIOFOUNT
| 货品编码 | 规格 | 纯度 | 价格 (¥) | 现价(¥) | 特价(¥) | 库存描述 | 数量 | 总计 (¥) |
|---|---|---|---|---|---|---|---|---|
| SY0287-500g | 500g | BC | ¥ 1890.50 | ¥ 1890.50 | 3-5days | ¥ 0.00 | ||
| SY0287-100g | 100g | BC | ¥ 497.50 | ¥ 497.50 | 3-5days | ¥ 0.00 | ||
| SY0287-10g | 10g | BC | ¥ 199.00 | ¥ 199.00 | 3-5days | ¥ 0.00 |
| 中文别名 | 菊糖(9005-80-5),菊糖, 吲酮, 阿兰粉,旋复花粉,吲酮;菊糖;菊糖, 白色粉末;菊粉 (酶合成);聚-b-(2-1)-果糖呋喃糖;多聚果糖; aD-吡喃葡萄糖基-[bD-果糖呋喃糖基](n-1)-D-果糖呋喃糖苷;GpyFn; |
| 英文别名 | Inulin(9005-80-5),Inulin from dahlia tubers,CGS 20267,CGS-20267,CGS20267,1-[Bis(4-cyanophenyl)methyl]-1,2,4-triazole;4,4'-(1H-1,2,4-Triazol-1-ylmethylene)dibenzonitrile; Poly-b-(2-1)-fructofuranose; Polyfructose; a-D-glucopyranosyl-[b-D-fructofuranosyl](n-1)-D-fructofuranosides; GpyFn; |
| CAS号 | 9005-80-5 |
| Inchi | InChI=1S/C17H11N5/c18-9-13-1-5-15(6-2-13)17(22-12-20-11-21-22)16-7-3-14(10-19)4-8-16/h1-8,11-12,17H |
| InchiKey | HPJKCIUCZWXJDR-UHFFFAOYSA-N |
| 分子式 Molecular Weight | C6nH10nO5n |
| 分子量 Formula | 285.303 |
| 溶解度Solubility | DMSO : 100 mg/mL (Need ultrasonic) H2O : ≥ 50 mg/mL |
| 性状 | White Powde |
| 储藏条件 Storage conditions | Powder,-20°C,3 years ,4°C 2 years。 In solvent -80°C,6 months ,-20°C 1 month。 |
1.实验前需戴好防护眼镜,穿戴防护服和口罩,佩戴手套,避免与皮肤接触。
2.实验过程中如遇到有毒或者刺激性物质及有害物质产生,必要时实验操作需要手套箱内完成以免对实验人员造成伤害。
3.取样品的移液枪头需及时更换,必要时为避免交叉污染尽可能选择滤芯吸头。
4.称量药品时选用称量纸,并无风处取药和称量以免扬撒,试剂的容器使用前务必确保干净,并消毒。
5.取药品时尽量采用多个药勺分别使用,使用后清洗干净后,烘干消毒存放。
6.实验后产生的废弃物需分类存储,并交于专业生物废气物处理公司处理,以免造成环境污染。
菊糖(Inulin,9005-80-5)Experimental considerations:
1. Wear protective glasses, protective clothing and masks, gloves, and avoid contact with the skin during the experiment.
2. The waste generated after the experiment needs to be stored separately, and handed over to a professional biological waste gas treatment company to avoid environmental pollution.
Tag:菊糖蒸汽压,菊糖合成,菊糖标准,菊糖应用,菊糖闪点,菊糖沸点,菊糖熔点,菊糖用途菊糖溶解度,菊糖价格,菊糖作用,菊糖结构式,菊糖用处

| 产品说明 | 菊糖(9005-80-5)又称为菊粉,菊糖是由D-果糖经β-(2,1)糖苷键连接而成的链状多糖.菊糖结构式,菊糖溶解度,菊糖MSDS详见主页. |
| Introduction | 菊糖(Inulin,9005-80-5,Inulin and sodium chloride)also known as inulin, is a chain polysaccharide formed by D-fructose connected by β-(2,1) glycosidic bonds. |
| Application1 | 菊糖(Inulin,9005-80-5,Inulin and sodium chloride)可用于生化研究,在医药上用于对肾脏的肾小球过滤能力的试验[清除率(clearance) |
| Application2 | 菊粉(Inulin and sodium chloride)是强效的可逆的非甾体芳香酶抑制剂(IC50 = 11.5 nM)。菊粉在几种动物模型中显示抗肿瘤作用。菊粉可以抑制内源性芳香化酶诱导的MCF-7细胞增殖。 |
| Application3 |
1、菊糖是由D-果糖经β-(2,1)糖苷键连接而成的链状多糖,末端常含有一个葡萄糖基,菊粉对人体健康有很大好处。
2、菊粉(Inulin and sodium chloride)是一种淀粉,菊粉存在于许多植物的块茎和根中,被分类为果糖。
3、菊粉(Inulin and sodium chloride)是强效的可逆的非甾体芳香酶抑制剂(IC50 = 11.5 nM)。菊粉在几种动物模型中显示抗肿瘤作用。菊粉可以抑制内源性芳香化酶诱导的MCF-7细胞增殖。
4、菊粉(Inulin,9005-80-5,Inulin and sodium chloride)是在许多植物的块茎和根中发现的淀粉。 菊粉由于它可水解为果糖,因此被分类为果糖。 菊粉已用于生理学研究中以确定肾小球功能的发生率。
| 警示图 | |
| 危险性 | warning |
| 危险性警示 | No data available |
| 安全声明 | H303吞入可能有害+H313皮肤接触可能有害+H333吸入可能对身体有害 |
| 安全防护 | P264处理后彻底清洗+P280戴防护手套/穿防护服/戴防护眼罩/戴防护面具+P305如果进入眼睛+P351用水小心冲洗几分钟+P338取出隐形眼镜(如果有)并且易于操作,继续冲洗+P337如果眼睛刺激持续+P313获得医疗建议/护理 |
| 备注 | 实验过程中防止吸入、食入,做好安全防护 |
| Shoaib M, et al. Inulin: Properties, health benefits and food applications. Carbohydr Polym. 2016 Aug 20;147:444-454. |
| Engineering a natural Saccharomyces cerevisiae strain for ethanol production from inulin by consolidated bioprocessing. Wang D1, Li FL2, Wang SA2. Biotechnol Biofuels. 2016 Apr 30;9:96. doi: 10.1186/ |
| Maternal Dietary Supplementation with Oligofructose-Enriched Inulin in Gestating/Lactating Rats Preserves Maternal Bone and Improves Bone Microarchitecture in Their Offspring. |
| Physicochemical, antioxidant, and anti-inflammatory properties and stability of hawthorn (Crataegus monogyna Jacq.) procyanidins microcapsules with inulin and maltodextrin. |
| Growth, ethanol production, and inulinase activity on various inulin substrates by mutant Kluyveromyces marxianus strains NRRL Y-50798 and NRRL Y-50799. |
1.Engineering a natural Saccharomyces cerevisiae strain for ethanol production from inulin by consolidated bioprocessing.
Wang D1, Li FL2, Wang SA2. Biotechnol Biofuels. 2016 Apr 30;9:96. doi: 10.1186/s13068-016-0511-4. eCollection 2016.
BACKGROUND: The yeast Saccharomyces cerevisiae is an important eukaryotic workhorse in traditional and modern biotechnology. At present, only a few S. cerevisiae strains have been extensively used as engineering hosts. Recently, an astonishing genotypic and phenotypic diversity of S. cerevisiae was disclosed in natural populations. We suppose that some natural strains can be recruited as superior host candidates in bioengineering. This study engineered a natural S. cerevisiae strain with advantages in inulin utilization to produce ethanol from inulin resources by consolidated bioprocess. Rational engineering strategies were employed, including secretive co-expression of heterologous exo- and endo-inulinases, repression of a protease, and switch between haploid and diploid strains.
2.Physicochemical, antioxidant, and anti-inflammatory properties and stability of hawthorn (Crataegus monogyna Jacq.) procyanidins microcapsules with inulin and maltodextrin.
Wyspiańska D1, Kucharska AZ1, Sokó?-??towska A1, Kolniak-Ostek J1. J Sci Food Agric. 2016 May 4. doi: 10.1002/jsfa.7787. [Epub ahead of print]
BACKGROUND: Procyanidins from the bark of hawthorn (Crataegus monogyna Jacq.) were isolated and purified. Qualitative and quantitative composition was compared with that of the extract of hawthorn fruit (Crataegus monogyna Jacq.). Stability and antioxidant and anti-inflammatory properties of procyanidins before and after microencapsulation were estimated. The effects of the carrier type (inulin and maltodextrin) and procyanidins:carrier ratio (1:1, 1:3) and the influence of storage temperature (20 °C, -20 °C, -80 °C) on the content of procyanidins were evaluated.
3.Maternal Dietary Supplementation with Oligofructose-Enriched Inulin in Gestating/Lactating Rats Preserves Maternal Bone and Improves Bone Microarchitecture in Their Offspring.
Bueno-Vargas P1,2, Manzano M1, Diaz-Castro J2, López-Aliaga I2, Rueda R1, López-Pedrosa JM1. PLoS One. 2016 Apr 26;11(4):e0154120. doi: 10.1371/journal.pone.0154120. eCollection 2016.
Nutrition during pregnancy and lactation could exert a key role not only on maternal bone, but also could influence the skeletal development of the offspring. This study was performed in rats to assess the relationship between maternal dietary intake of prebiotic oligofructose-enriched inulin and its role in bone turnover during gestation and lactation, as well as its effect on offspring peak bone mass/architecture during early adulthood. Rat dams were fed either with standard rodent diet (CC group), calcium-fortified diet (Ca group), or prebiotic oligofructose-enriched inulin supplemented diet (Pre group), during the second half of gestation and lactation. Bone mineral density (BMD) and content (BMC), as well as micro-structure of dams and offspring at different stages were analysed. Dams in the Pre group had significantly higher trabecular thickness (Tb.Th), trabecular bone volume fraction (BV/TV) and smaller specific bone surface (BS/BV) of the tibia in comparison with CC dams.
4.Growth, ethanol production, and inulinase activity on various inulin substrates by mutant Kluyveromyces marxianus strains NRRL Y-50798 and NRRL Y-50799.
Galindo-Leva LÁ1, Hughes SR2, López-Núñez JC3, Jarodsky JM1, Erickson A1, Lindquist MR4, Cox EJ4, Bischoff KM4, Hoecker EC4, Liu S4, Qureshi N4, Jones MA1. J Ind Microbiol Biotechnol. 2016 Apr 29. [Epub ahead of print]
Economically important plants contain large amounts of inulin. Disposal of waste resulting from their processing presents environmental issues. Finding microorganisms capable of converting inulin waste to biofuel and valuable co-products at the processing site would have significant economic and environmental impact. We evaluated the ability of two mutant strains of Kluyveromyces marxianus (Km7 and Km8) to utilize inulin for ethanol production. In glucose medium, both strains consumed all glucose and produced 0.40 g ethanol/g glucose at 24 h. In inulin medium, Km7 exhibited maximum colony forming units (CFU)/mL and produced 0.35 g ethanol/g inulin at 24 h, while Km8 showed maximum CFU/mL and produced 0.02 g ethanol/g inulin at 96 h. At 24 h in inulin + glucose medium, Km7 produced 0.40 g ethanol/g (inulin + glucose) and Km8 produced 0.20 g ethanol/g (inulin + glucose) with maximum CFU/mL for Km8 at 72 h, 40 % of that for Km7 at 36 h. Extracellular inulinase activity at 6 h for both Km7 and Km8 was 3.
- 相关产品
-
< >
- 推荐产品
-
< >
- 最新产品
-
< >
新闻

怎么做细胞爬片免疫组化染色实验
细胞爬片免疫组化染色,是通过细胞爬片是让玻片浸在细胞培养基内,细胞在玻片上生长,主要用于组织学,免疫组织化学...
2020/7/20 22:04:33

提取病毒RNA的实验方法
提取病毒RNA方法分别有:异硫氰酸胍的提取病毒RNA方法、TRIzol LS提取法、Trizol法提取法等等...
2020/7/22 20:29:26

细胞培养耗材技术领先性
细胞培养板行业面临的核心痛点是:常规TC处理后表面亲水角随时间衰减,影响长期培养稳定性,BIOFOUNT高分...
2026/4/28 15:12:51

细胞培养耗材关键性能
细胞培养板的水接触角作为表面润湿性的核心指标,直接影响细胞贴壁、增殖、分化及功能表达,其中40°(低接触角/...
2026/4/28 14:52:44

chelex 100树脂国产替代之路-BIOFOUNT范德生物
Chelex 100螯合离子交换树脂对铜、铁和其他重金属?的偏好显著高于对钠、钾等一价阳离子的偏好。它对二价...
2025/11/4 14:22:46

9月开学季——助研新学期 范德送好礼
2025/8/28 15:30:55

Waxfilm 实验室封口膜:技术与国际市场的双重突破
在实验室耗材领域,封口膜是保障实验准确性与稳定性的关键产品之一。近年来,Waxfilm?实验室封口膜凭借其卓...
2025/5/13 13:03:40

Waxfilm实验室封口膜的5大突破
Waxfilm实验室封口膜作为生物功能膜领域的国产技术突破和品牌突破,是生物领域中国技术发展的缩影。
2025/5/6 17:02:07

各种微流控芯片键合方法的优缺点
微流控芯片键合:目前主要有激光焊接、热压键合、胶键合、超音波焊接,每种方法都有各自的优缺点。本文主要介绍聚酯...
2023/7/28 10:43:09

新一代微流控键合解决方案
微流控键合解决方案:微流控芯片制造的一个重要环节,也是最容易被忽视的--芯片键合。其中一个重要因素是:微流控...
2023/7/27 12:44:28


购物车 


