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Kurita, M.

Publications and source records attributed to Kurita, M..

4 recordsLinked to original sources

Experimental method for creating skin with acquired appendage dysfunction

Mammalian skin appendages, such as hair follicles and sweat glands, are essential for both esthetic and functional purposes. Conditions such as burns and ulcers can lead to dysfunction or loss of skin appendages and result in hair loss and dry skin, posing challenges in their regeneration. Existing animal models are insufficient for studying acquired dysfunction of skin appendages without underlying genetic causes. This study aimed to develop more clinically relevant mouse models by evaluating two approaches: keratinocyte transplantation and grafting of skin at varying thicknesses. GFP-expressing keratinocytes were transplanted into ulcers on nude mice, leading to re-epithelialization with minimal skin appendages at 4 weeks after transplantation. However, the re-epithelialized area was largely derived from recipient cells, with the grafted cells contributing to only 1.31% of the area. In the skin grafting model, donor skin from GFP transgenic mice was grafted onto nude mice at three thicknesses: full thickness, 10/1000 inch, and 5/1000 inch. The grafted area of the 5/1000-inch grafts remained stable at 89.5% of its original size 5 weeks after transplantation, ensuring a sufficiently large skin area. The 5/1000-inch grafts resulted in a significant reduction in skin appendages, with a mean of only 3.73 hair follicles per 5 mm, compared with 69.7 in the control group. The 5/1000-inch skin grafting in orthotopic autologous transplantation also showed the achievement of skin surfaces with a minimal number of skin appendages. Therefore, a mouse model with skin grafting demonstrated stability in producing large areas of skin with minimal appendages. In conclusion, these two models with acquired skin appendage dysfunction and no underlying genetic causes provide valuable tools for researching skin appendage regeneration, offering insights into potential therapeutic strategies for conditions involving skin appendage loss.

bioengineering↗

Optimization of an adeno-associated viral vector for keratinocytes in vitro and in vivo

BackgroundLocal gene therapies, including in vivo genome editing, are highly anticipated for the treatment of genetic diseases in skin, especially the epidermis. While the adeno-associated virus (AAV) is a potent vector for in vivo gene delivery, the lack of efficient gene delivery methods has limited its clinical applications. ObjectiveTo optimize the AAV gene delivery system with higher gene delivery efficiency and specificity for epidermis and keratinocytes (KCs), using AAV capsid and promoter engineering technologies. MethodsAAV variants with mutations in residues reported to be critical to determine the tropism of AAV2 for KCs were generated by site-directed mutagenesis of AAVDJ. The infection efficiency and specificity for KCs of these variants were compared with those of previously reported AAVs considered to be suitable for gene delivery to KCs in vitro and in vivo. Additionally, we generated an epidermis-specific promoter using the most recent short-core promoter and compared its specificity with existing promoters. ResultsA novel AAVDJ variant capsid termed AAVDJK2 was superior to the existing AAVs in terms of gene transduction efficiency and specificity for epidermis and KCs in vitro and in vivo. A novel tissue-specific promoter, termed the K14 SCP3 promoter, was superior to the existing promoters in terms of gene transduction efficiency and specificity for KCs. ConclusionThe combination of the AAVDJK2 capsid and K14 SCP3 promoter improves gene delivery to epidermis in vivo and KCs in vitro. The novel AAV system may benefit experimental research and development of new epidermis-targeted gene therapies.

bioengineering↗

Molecular Weight-dependent Diffusion, Biodistribution, and Clearance Behavior of Tetra-armed Poly(ethylene glycol) Subcutaneously Injected into the Back of Mice

Four-armed poly(ethylene glycol) (PEG)s are essential hydrophilic polymers extensively utilized to prepare PEG hydrogels, which are valuable tissue scaffolds. When hydrogels are used in vivo, they eventually dissociate due to the cleavage of the backbone structure. When the cleavage occurs at the cross-linking point, the hydrogel elutes as an original polymer unit, i.e., four-armed PEG. Although four-armed PEGs have been utilized as subcutaneously implanted biomaterials, the diffusion, biodistribution, and clearance behavior of four-armed PEG from the skin are essential. This paper investigates time-wise diffusion from the skin, biodistribution to distant organs, and clearance of fluorescence-labeled four-armed PEGs with molecular weight (Mw) ranging from 5-40 kg/mol subcutaneously injected into the back of mice. Changes over time indicated that the fate of subcutaneously injected PEGs is Mw-dependent. Four-armed PEGs with Mw [≤] 10 kg/mol gradually diffused to deep adipose tissue beneath the injection site and distributed dominantly to distant organs, such as the kidney. PEGs with Mw [≥] 20 kg/mol stagnated in the skin and deep adipose tissue, and were mainly delivered to the heart, lung, and liver. The fundamental understanding of the Mw-dependent behavior of four-armed PEGs is beneficial for preparing biomaterials using PEGs, providing a reference in the field of tissue engineering.

bioengineering↗

In vivo reprogramming of wound-resident cells generates skin with hair

Summary ParagraphMammalian skin appendages, such as hair follicles and sweat glands, are complex mini-organs formed during skin development1, 2. As wounds heal, the resulting scar tissue lacks skin appendages. The clinical regeneration of skin appendages is an ongoing challenge3, 4. Skin epithelial tissues have been regenerated in vivo by cellular reprogramming5, 6, but the de novo generation of skin appendages has not previously been achieved. Here, we show that transplantation of a type of epithelial cell and two types of mesenchymal cells, reprogrammed from adult mouse subcutaneous mesenchymal cells to mimic developing skin cells, resulted in the generation of skin-appendage-like structures. Furthermore, with the development of a new AAV serotype, in vivo reprogramming of wound-resident cells with the same reprogramming factors generates skin with de novo appendages in adult mice. These findings may provide new therapeutic avenues for skin regeneration and frequent aging-associated skin appendage disorders, such as hair loss and dry skin, and may extend to other tissues and organs. This study also provides the potential for de novo generation of complex organs in vivo.

cell biology↗