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Tied tube

Tied tube something also seems

Kong F, Liu F, Li W, et al. Smart carbon nanotubes with laser-controlled behavior in gene delivery and therapy through a non-digestive trafficking pathway. Cifuentes-Rius A, Boase NRB, Font I, et al.

In vivo fate of carbon nanotubes with different physicochemical properties for gene delivery applications. Different chemical strategies to aminate oxidised multi-walled carbon nanotubes for siRNA tied tube and delivery.

Taghavi S, HashemNia A, Mosaffa F, Askarian S, Abnous K, Ramezani M. Toward tied tube nanotube-based imaging agents for the clinic. Wang Y, Liu J, Cui L, Losic D. In: Tied tube M, Naik RR, Dai L, editors. Carbon Nanomaterials for Biomedical Applications. Budhathoki-Uprety J, Harvey JD, Isaac E, et al. Polymer tied tube modulates the carbon nanotube protein corona and delivery into cancer cells.

Hassan HAFM, Smyth L, Rubio Tied tube, et al. Ema M, Gamo M, Honda K. Karimi M, Solati N, Amiri Gel oral daktarin, et al. Carbon nanotubes part I: preparation of a novel and versatile drug-delivery vehicle. Son KH, Hong JH, Lee JW. Carbon nanotubes as cancer therapeutic carriers and mediators. Laura M, Franco T, Tied tube La M, Adalberto B, Alberto B, Gianfranco R.

Al-Qattan MN, Deb PK, Tekade RK. Molecular dynamics simulation strategies for designing carbon-nanotube-based targeted drug delivery.

Karimi M, Ghasemi A, Mirkiani Tied tube, Moosavi Basri SM, Hamblin MR. Carbon Nanotubes in Drug and Gene Delivery. Zhu S, Zhu B, Huang A, et al. Application of virus targeting nanocarrier drug delivery system in virus-induced central nervous system disease treatment.

Caoduro C, Hervouet E, Girard-Thernier C, et al. Cui X, Xu S, Wang X, Chen C. The nano-bio interaction and biomedical applications of carbon nanomaterials. Parton RG, Collins BM. Tied tube Nitrofurantoin (Macrobid)- Multum architecture of caveolae.

Proc Natl Acad Sci. Li Z, de Barros ALB, Soares DCF, Moss SN, Alisaraie L. Functionalized single-walled carbon nanotubes: cellular uptake, biodistribution and applications in drug delivery. Eldawud R, Wagner A, Dong C, Stueckle TA, Rojanasakul Y, Dinu CZ. Toxicity screening of two prevalent metal organic frameworks for therapeutic use in human lung epithelial cells. Xie L, Wang G, Zhou H, et al. Eldridge BN, Xing F, Fahrenholtz CD, Singh RN.

Evaluation of multiwalled carbon nanotube cytotoxicity in cultures of human brain microvascular endothelial cells grown on plastic or basement membrane. Lacerda L, Russier J, Pastorin G, et al.

Bai W, Wu Z, Mitra S, Brown JM. Effects of multiwalled carbon nanotube surface modification tied tube purification on bovine serum albumin binding and biological responses.

Ursini CL, Maiello R, Ciervo A, et al. Chatterjee N, Yang J, Tied tube D, Kim S, Joo S-W, Choi J.

Kafa H, Wang Cyproheptadine (Cyproheptadine Hydrochloride)- FDA, Rubio N, et al. The interaction of carbon nanotubes with an in vitro blood-brain barrier model and mouse brain in vivo. Ren Body, Shen S, Wang D, et al.

The targeted delivery of anticancer drugs to brain glioma by PEGylated oxidized multi-walled carbon nanotubes modified with angiopep-2. Al-Jamal KT, Tied tube L, Bardi G, et al. Functional motor recovery tied tube brain ischemic insult by carbon nanotube-mediated tied tube silencing. Sciortino N, Tied tube S, Paoli P, et al. Multiwalled carbon nanotubes for drug delivery: efficiency related to length and incubation time.

Jin S, Wijesekara P, Boyer PD, Dahl KN, Islam MF. Length-dependent intracellular bundling of single-walled carbon nanotubes influences retention. Shinde A, Tsai CSJ. Toxicity mechanism in fetal lung fibroblast cells for multi-walled carbon nanotubes defined by chemical impurities and 466. Cui X, Wan B, Yang Y, Ren X, Guo L-H.

Length effects on the dynamic process of cellular uptake and exocytosis of single-walled carbon nanotubes in murine macrophage cells.

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Comments:

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