| Literature DB >> 21980238 |
S Mitatha1, N Moongfangklang, M A Jalil, N Suwanpayak, J Ali, P P Yupapin.
Abstract
A novel design of a multi-drug delivery network and diagnosis using a molecular network is proposed. By using a pair of tweezers to generate the intense optical vortices within the PANDA ring resonator, the required molecules (drug volumes) can be trapped and moved dynamically within the molecular bus networks, in which the required drug delivery targets can be achieved within the network. The advantage of the proposed system is that the diagnostic method can be used within a tiny system (thin film device or circuit), which is available as an embedded device for diagnostic use in patients. In practice, the large molecular networks such as ring, star, and bus networks can be integrated to form a large drug delivery system. The channel spacing of the trapped volumes (molecules) within the bus molecular networks can be provided by using the appropriate free spectrum range, which is analyzed and discussed in the terms of crosstalk effects. In this work, crosstalk effects of about 0.1% are noted, which can be neglected and does not affect the network stability.Entities:
Keywords: drug delivery network; molecular diagnosis; molecular networks; neural system and network
Mesh:
Year: 2011 PMID: 21980238 PMCID: PMC3184935 DOI: 10.2147/IJN.S23861
Source DB: PubMed Journal: Int J Nanomedicine ISSN: 1176-9114
Figure 1Schematic diagram of a buffer and bus networks. (A) is a PANDA ring resonator, (B) is a wavelength router and bus capillaries network. Radd is the add/drop filter radius, RR and RL are the right and left ring resonator radii, respectively.
Figure 2Results of the trapping tools. (A) wavelengths center 400 nm, (B) wavelengths center 450 nm. (C) and (D) are different tweezer separations. Radd = 2 μm, RR = RL = 1 μm. The coupling coefficients are κ0 = 0.5, κ1 = 0.35, κ2 = 0.1 and κ3 = 0. 35. The input power is 1 W.
Figure 4Schematic diagram of molecular network (A) bus network (B) ring network.
Figure 3Results of the trapping tools. (A) wavelengths center 400 nm, (B) wavelengths center 450 nm, (C) tweezers separation, (D) normalized tweezers, (E) multitweezers, and (F) normalized tweezers. Radd = 10 μm, RR= RL = 3 μm. The coupling coefficients are κ0 = 0.95, κ1 = 0.5, κ2 = 0.2 and κ3 = 0. 5. The input power is 1 W.