Carbon nanotubes in biology and medicine: In vitro and in vivo detection, imaging and drug delivery

Углеродные нанотрубки в биологии и медицине: обнаружение, визуализация и доставка лекарственных препаратов in vitro и in vivo
Zhuang Liu, Hongjie Dai, Scott M. Tabakman, Kevin Welsher
2009-02-01

Biomedical imagingCarbon nanotubesDrug deliveryElectrical nanosensorsSurface functionalization
Carbon nanotubes exhibit many unique intrinsic physical and chemical properties and have been intensively explored for biological and biomedical applications in the past few years. In this comprehensive review, we summarize the main results from our and other groups in this field and clarify that surface functionalization is critical to the behavior of carbon nanotubes in biological systems. Ultrasensitive detection of biological species with carbon nanotubes can be realized after surface passivation to inhibit the non-specific binding of biomolecules on the hydrophobic nanotube surface. Electrical nanosensors based on nanotubes provide a label-free approach to biological detection. Surface-enhanced Raman spectroscopy of carbon nanotubes opens up a method of protein microarray with detection sensitivity down to 1 fmol/L. In vitro and in vivo toxicity studies reveal that highly water soluble and serum stable nanotubes are biocompatible, nontoxic, and potentially useful for biomedical applications. In vivo biodistributions vary with the functionalization and possibly also size of nanotubes, with a tendency to accumulate in the reticuloendothelial system (RES), including the liver and spleen, after intravenous administration. If well functionalized, nanotubes may be excreted mainly through the biliary pathway in feces. Carbon nanotube-based drug delivery has shown promise in various In vitro and in vivo experiments including delivery of small interfering RNA (siRNA), paclitaxel and doxorubicin. Moreover, single-walled carbon nanotubes with various interesting intrinsic optical properties have been used as novel photoluminescence, Raman, and photoacoustic contrast agents for imaging of cells and animals. Further multidisciplinary explorations in this field may bring new opportunities in the realm of biomedicine.
1
After intravenous administration, biodistribution depends on nanotube functionalization and possibly size, with accumulation mainly in the liver and spleen; suitable functionalization may promote biliary fecal excretion.
2
Carbon nanotube surface-enhanced Raman spectroscopy supports protein microarray detection with sensitivity down to 1 fmol/L.
3
Carbon nanotubes show promise for delivering siRNA, paclitaxel, and doxorubicin, and single-walled nanotubes can serve as photoluminescence, Raman, and photoacoustic imaging contrast agents.
4
Highly water-soluble and serum-stable functionalized nanotubes were reported as biocompatible and nontoxic in vitro and in vivo toxicity studies.
5
Surface functionalization critically determines carbon nanotube behavior in biological systems, including biomolecule interactions, toxicity, biodistribution, and excretion.
6
Surface passivation enables ultrasensitive biological detection by suppressing nonspecific biomolecule binding, while nanotube electrical nanosensors provide label-free detection.

Carbon nanotubes in biological and biomedical systems

The effects of surface functionalization on carbon-nanotube biocompatibility, biodistribution, detection, imaging, and drug-delivery performance

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2009-02-01
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Zhuang Liu
Hongjie Dai
Scott M. Tabakman
Kevin Welsher
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