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      Bio-inspired peristaltic propulsion of hybrid nanofluid flow with Tantalum (Ta) and Gold (Au) nanoparticles under magnetic effects

      1 , 2 , 3
      Waves in Random and Complex Media
      Informa UK Limited

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          Most cited references47

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          Is Open Access

          Re-epithelialization and immune cell behaviour in an ex vivo human skin model

          A large body of literature is available on wound healing in humans. Nonetheless, a standardized ex vivo wound model without disruption of the dermal compartment has not been put forward with compelling justification. Here, we present a novel wound model based on application of negative pressure and its effects for epidermal regeneration and immune cell behaviour. Importantly, the basement membrane remained intact after blister roof removal and keratinocytes were absent in the wounded area. Upon six days of culture, the wound was covered with one to three-cell thick K14+Ki67+ keratinocyte layers, indicating that proliferation and migration were involved in wound closure. After eight to twelve days, a multi-layered epidermis was formed expressing epidermal differentiation markers (K10, filaggrin, DSG-1, CDSN). Investigations about immune cell-specific manners revealed more T cells in the blister roof epidermis compared to normal epidermis. We identified several cell populations in blister roof epidermis and suction blister fluid that are absent in normal epidermis which correlated with their decrease in the dermis, indicating a dermal efflux upon negative pressure. Together, our model recapitulates the main features of epithelial wound regeneration, and can be applied for testing wound healing therapies and investigating underlying mechanisms.
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            Homotopy perturbation method: a new nonlinear analytical technique

            Ji-Huan He (2003)
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              Multiplexed imaging of surface enhanced Raman scattering nanotags in living mice using noninvasive Raman spectroscopy.

              Raman spectroscopy is a newly developed, noninvasive preclinical imaging technique that offers picomolar sensitivity and multiplexing capabilities to the field of molecular imaging. In this study, we demonstrate the ability of Raman spectroscopy to separate the spectral fingerprints of up to 10 different types of surface enhanced Raman scattering (SERS) nanoparticles in a living mouse after s.c. injection. Based on these spectral results, we simultaneously injected the five most intense and spectrally unique SERS nanoparticles i.v. to image their natural accumulation in the liver. All five types of SERS nanoparticles were successfully identified and spectrally separated using our optimized noninvasive Raman imaging system. In addition, we were able to linearly correlate Raman signal with SERS concentration after injecting four spectrally unique SERS nanoparticles either s.c. (R(2) = 0.998) or i.v. (R(2) = 0.992). These results show great potential for multiplexed imaging in living subjects in cases in which several targeted SERS probes could offer better detection of multiple biomarkers associated with a specific disease.
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                Author and article information

                Contributors
                Journal
                Waves in Random and Complex Media
                Waves in Random and Complex Media
                Informa UK Limited
                1745-5030
                1745-5049
                November 09 2021
                : 1-26
                Affiliations
                [1 ]College of Mathematics and Systems Science, Shandong University of Science and Technology, Qingdao, Shandong, People's Republic of China
                [2 ]Basic Science, Faculty of Engineering, The British University in Egypt, Al-Shorouk City, Cairo Egypt
                [3 ]Instituto de Matemáticas-Juriquilla, Universidad Nacional Autónoma de México, Querétaro, Mexico
                Article
                10.1080/17455030.2021.1998728
                cda54cf1-9b31-4e8e-8d9d-e0e8db748d8e
                © 2021
                History

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