排序方式: 共有56条查询结果,搜索用时 15 毫秒
51.
Karthikeyan Nithiyanantham Ganesh Kadirampatti Mani Vikraman Subramani Karrthick Karukkupalayam Palaniappan Mohanraj Uthiran Sennniandavar Vellengiri Sambasivaselli Raju Sanjay S. Supe Tejinder Kataria 《Reports of Practical Oncology and Radiotherapy》2014,19(5):287-295
Aim
To study the influence of segment width on plan quality for volumetric modulated arc based stereotactic body radiotherapy.Background
The redundancy of modulation for regularly shaped small volume tumors results in creation of many small segments and an increase of monitor units, with a consequent prolongation of treatment and uncertainty in treatment delivery.Materials and methods
Six cases each in lung, abdomen and liver were taken for the study. For each case, three VMAT SBRT plans were generated with different penalties on minimum segment width of 0.5, 1.0 and 1.5 cm. A comparison was made on the metrics of dose volume histogram, dosimetric indices, monitor units (MUs) and delivery accuracy.Results
The mean reduction of total MUs when compared with 0.5 cm plan was observed as 12.7 ± 6.0% and 17.5 ± 7.2% for 1.0 cm and 1.5 cm of minimum segment width, respectively. The p value showed a significant degradation in dosimetric indices for 1.5 cm plans when compared with 0.5 cm and 1.0 cm plans. The average deviation of measured dose with TPS calculated was 3.0 ± 1.1%, 2.1 ± 0.84% and 1.8 ± 0.9% for 0.5, 1.0 and 1.5 cm, respectively. The calculated gamma index with pass criteria of 2% dose difference and 2 mm distance to agreement was 95.9 ± 2.8%, 96.5 ± 2.6% and 97.8 ± 1.6% as calculated for 0.5, 1.0 and 1.5 cm of penalties, respectively. In view of the trade off between delivery efficiency and plan quality, 1 cm minimum segment width plans showed an improvement.Conclusions
VMAT SBRT plans with increased optimal value of minimum segment width showed better plan quality and delivery efficiency for stereotactic body radiotherapy. 相似文献52.
One of the most critical parameters in cartilage tissue engineering which influences the clinical success of a repair therapy is the ability to match the load-bearing capacity of the tissue as it functions in vivo. While mechanical forces are known to positively influence the development of cartilage matrix architecture, these same forces can induce long-term implant failure due to poor integration or structural deficiencies. As such, in the design of optimal repair strategies, it is critical to understand the timeline of construct maturation and how the elaboration of matrix correlates with the development of mechanical properties. We have previously characterized a scaffold-free method to engineer cartilage utilizing primary chondrocytes cultured at high density in hydrogel-coated culture vessels to promote the formation of a self-aggregating cell suspension that condenses to form a cartilage-like biomass, or cartilage tissue analog (CTA). Chondrocytes in these CTAs maintain their cellular phenotype and deposit extracellular matrix to form a construct that has characteristics similar to native cartilage; however, the mechanical integrity of CTAs had not yet been evaluated. In this study, we found that chondrocytes within CTAs produced a robust matrix of proteoglycans and collagen that correlated with increasing mechanical properties and decreasing cell-matrix ratios, leading to properties that approached that of native cartilage. These results demonstrate a unique approach to generating a cartilage-like tissue without the complicating factor of scaffold, while showing increased compressive properties and matrix characteristics consistent with other approaches, including scaffold-based constructs. To further improve the mechanics of CTAs, studies are currently underway to explore the effect of hydrodynamic loading and whether these changes would be reflective of in vivo maturation in animal models. The functional maturation of cartilage tissue analogs as described here support this engineered cartilage model for use in clinical and experimental applications for repair and regeneration in joint-related pathologies. 相似文献
53.
The purpose of the present investigation was to encapsulate pure prednisolone (PRD) and PRD–hydroxypropyl-β-cyclodextrin (HPβCD)
complex in cellulose-based matrix microspheres. The system simultaneously exploits complexation technique to enhance the solubility
of low-solubility drug (pure PRD) and subsequent modulation of drug release from microspheres (MIC) at a predetermined time.
The microspheres of various compositions were prepared by an oil-in-oil emulsion–solvent evaporation method. The effect of
complexation and presence of cellulose polymers on entrapment efficiency, particle size, and drug release had been investigated.
The solid-state characterization was performed by Fourier transform infrared spectroscopy, thermogravimetry, differential
scanning calorimetry, and powder X-ray diffractometry. The morphology of MIC was examined by scanning electron microscopy.
The in vitro drug release profiles from these microspheres showed the desired biphasic release behavior. After enhancing the solubility
of prednisolone by inclusion into HPβCD, the drug release was easily modified in the microsphere formulation. It was also
demonstrated that the CDs in these microspheres were able to modulate several properties such as morphology, drug loading,
and release properties. The release kinetics of prednisolone from microspheres followed quasi-Fickian and first-order release
mechanisms. In addition to this, the f
2-metric technique was used to check the equivalency of dissolution profiles of the optimized formulation before and after
stability studies, and it was found to be similar. A good outcome, matrix microspheres (coded as MIC5) containing PRD–HPβCD
complex, showed sustained release of drug (95.81%) over a period of 24 h. 相似文献
54.
R. Ananthan Remya Mohanraj V. Narmatha Bai 《In vitro cellular & developmental biology. Plant》2018,54(5):553-563
Approaches for in vitro regeneration and fabrication of synthetic seeds were formulated to support restoration in the wild and genetic manipulation of Ceropegia barnesii (categorized as endemic and endangered). MS medium augmented with 4 mg L?1 benzyl adenine was most advantageous for the production of multiple shoots from nodal explants. Fabrication of synthetic seeds was accomplished by sodium alginate encapsulation of nodes from microshoots. The most favorable medium combination for the induction of multiple shoots from synthetic seeds was MS medium complemented with 4 mg L?1 benzyl adenine and 1 mg L?1 gibberelic acid. Following root induction promoted by half strength MS basal medium augmented with indolebutyric acid, multiple shoots were subjected to hardening. Influence of vesicular-arbuscular mycorrhizal fungi on the hardening trials was investigated and it was observed that dual inoculation of Glomus aggregatum and G. intraradices enhanced the survival rate. The encapsulated nodes of C. barnesii were tested for their capability to endure different temperatures during storage and the optimal temperature for storage was found to be 4°C. A methodology for initiation of somatic embryogenesis from C. barnesii is also reported here, but embryos could not be induced to develop further. The micropropagated plants were reintroduced in to their natural habitat. This is the first report on micropropagation of C. barnesii. 相似文献
55.
Host plant utilization by butterfly larvae in the Andaman and Nicobar Islands (Indian Ocean) 总被引:1,自引:0,他引:1
The larval food plants of the butterflies of the Andaman and Nicobar islands have not been studied, although the butterfly fauna per se is fairly well known. For the first time we report the food plants of the larvae of 120 species of butterflies from these islands on the basis of laboratory rearing and field studies. This information is essential for the formulation of management programmes for butterfly conservation on these islands which are known to harbour critical swallowtail and (possibly) danaine faunas. 相似文献
56.
Yan Chen Vellore J. Mohanraj John E. Parkin 《International journal of peptide research and therapeutics》2003,10(5-6):621-629
Summary A novel nanoparticle delivery system has been developed by employing the oppositely charged polymers chitosan (CS) and dextran
sulfate (DS), and a simple coacervation process. Under the conditions investigated, the weight ratio of the two polymers is
identified as a determining factor controlling particle size, surface charge, entrapment efficiency and release characteristics
of the nanoparticles produced. Particles of 223 nm mean diameter were produced under optimal conditions with a zeta potential
of approximately −32.6 mV. A maximum of 75% anti-angiogenesis peptide entrapment efficiency was achieved with a CS:DS weight
ratio of 0.59∶1. The same nanoparticle formulation also showed slow and sustained peptide release over a period of 6 days.
In contrast, the formulation containing a lower ratio of CS:DS (0.5∶1) was found to have reduced entrapment efficiency and
more rapid peptide release characteristics. The results of this study suggest that physicochemical and release characteristics
of the CS-DS nanoparticles can be modulated by changing ratios of two ionic polymers. The novel CS-DS nanoparticles prepared
by the coacervation process have potential as a carrier for small peptides. 相似文献