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Αλέξανδρος Γ. Σφακιανάκης

Wednesday, February 3, 2021

Histopathological correlations of bulk tissue polarimetric images: case study

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Abstract

Polarimetric imaging and image analysis have gained increased interest in soft tissue analysis at the cellular level. However, polarimetric imaging has widely been tested on thin tissue sections to provide reliable information correlated with histopathological findings.

Polarimetric bulk tissue analysis always offered an overall assessment of various tissue optical properties for diagnosis. In this study, the histopathological correlation of bulk tissue polarimetry images for soft tissues is discussed. The first‐hand information on the use of bulk tissue Mueller polarimetry and image analysis as an alternative to tissue histopathology is presented for surgically extracted colon and breast tissues.

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A case of lymphomatoid papulosis type E in a young adult; an uncommon entity

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Abstract

Lymphomatoid papulosis (LyP) type E is a rare variant of the primary cutaneous CD30+ lymphoproliferative disorders, characterized clinically by large necrotic eschar‐like lesions and histopathologically by angiodestructive and angioinvasive infiltrates of CD30+ lymphocytes. As in other forms of lymphomatoid papulosis, type E lesions may undergo spontaneous regression after weeks, with frequent recurrences. We report a 21‐year old male with an angiodestructive infiltrate of CD30+ lymphocytes manifesting as a papular eruption rather than ulceration, and suggest that this clinical phenotype might be related to the presence of CD4+ lymphocytes in the inflammatory cell infiltrate.

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Can an in vitro hair drug model be developed using dermal papilla cells alone?

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Abstract

The search for hair growth drugs is hindered by the lack of in vitro models which adequately mimic the native hair follicle[1]. The in vitro organotypic model accurately reproduces hair drug responses from the hair shaft elongation of cultured hair follicles; however, these can only be maintained for 2 weeks, posing a challenge to obtain sufficient samples for comprehensive and continuous studies[2].

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Substantial alterations of the intestinal microbiota in psoriasis patients

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Abstract

Psoriasis is an immune‐mediated inflammatory skin condition. Accumulating evidence suggest that there is an intimate relationship between intestinal dysbiosis and psoriasis. In order to evaluate the specificity of intestinal microflora in patients with psoriasis and to investigate the link between psoriasis and gut microbiota, this study collected stool samples from 20 patients with moderate to severe chronic plaque psoriasis and 20 healthy controls. Methodological details are provided in the online supplementary material.

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An Immunomodulatory Miniaturized 3D Screening Platform Using Liquefied Capsules

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An Immunomodulatory Miniaturized 3D Screening Platform Using Liquefied Capsules

Immunomodulatory miniaturized 3D platform using liquefied capsules for the in vitro high‐content combinatorial screening of different biomaterials, cells, and bioinstructive microplatforms. Simply by changing the biomaterial of the last layer of the liquefied capsules, it is possible to proactively modulate the surrounding macrophages behavior, and at the same time, study independently the paracrine signaling with encapsulated cells.


Abstract

A critical determinant of successful clinical outcomes is the host's response to the biomaterial. Therefore, the prediction of the immunomodulatory bioperformance of biomedical devices following implantation is of utmost importance. Herein, liquefied capsules are proposed as immunomodulatory miniaturized 3D platforms for the high‐content combinatorial screening of different polymers that could be used generically in scaffolds. Additionally, the confined and liquefied core of capsules affords a cell‐mediated 3D assembly with bioinstructive microplatforms, allowing to study the potential synergistic effect that cells in tissue engineering therapies have on the immunological environment before implantation. As a proof‐of‐concept, three different polyelectrolytes, ranging in charge density and source, are used. Poly(L‐lysine)‐, alginate‐, and chitosan‐ending capsules with or without encapsulated mesenchymal stem/stromal cells (MSCs) are placed on top of a 2D culture of macrophages. Results show that chitosan‐ending capsules, as well as the presence of MSCs, favor the balance of macrophage polarization toward a more regenerative profile, through the up‐regulation of anti‐inflammatory markers, and the release of pro‐regenerative cytokines. Overall, the developed system enables the study of the immunomodulatory bioperformance of several polymers in a cost‐effective and scalable fashion, while the paracrine signaling between encapsulated cells and the immunological environment can be simultaneously evaluated.

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Preparation of Stretchable Nanofibrous Sheets with Sacrificial Coaxial Electrospinning for Treatment of Traumatic Muscle Injury

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Preparation of Stretchable Nanofibrous Sheets with Sacrificial Coaxial Electrospinning for Treatment of Traumatic Muscle Injury

Myogenesis is evaluated on step‐wise stretched gelatin nanofibers in order to apply skeletal muscle regeneration scaffolds.


Abstract

Traumatic muscle injury with massive loss of muscle volume requires intramuscular implantation of proper scaffolds for fast and successful recovery. Although many artificial scaffolds effectively accelerate formation and maturation of myotubes, limited studies are showing the therapeutic effect of artificial scaffolds in animal models with massive muscle injury. In this study, improved myotube differentiation is approved on stepwise stretched gelatin nanofibers and applied to damaged muscle recovery in an animal model. The gelatin nanofibers are fabricated by a two‐step process composed of co‐axial electrospinning of poly(ɛ‐caprolactone) and gelatin and subsequent removal of the outer shells. When stepwise stretching is applied to the myoblasts on gelatin nanofibers for five days, enhanced myotube formation and polarized elongation are observed. Animal models with volumetric loss at quadriceps femoris muscles (>50%) are transplanted with the myotubes cultivated on thin a nd flexible gelatin nanofiber. Treated animals more efficiently recover exercising functions of the leg when myotubes and the gelatin nanofiber are co‐implanted at the injury sites. This result suggests that mechanically stimulated myotubes on gelatin nanofiber is therapeutically feasible for the robust recovery of volumetric muscle loss.

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Biomimetic Tympanic Membrane Replacement Made by Melt Electrowriting

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Biomimetic Tympanic Membrane Replacement Made by Melt Electrowriting

Melt electrowriting (MEW) is utilized for fabrication of biomimetic tympanic membrane (TM) replacements. These novel materials transfer the complete frequency range of the human speech while offering comparable mechanical properties to the human TM. Excellent biocompatibility is demonstrated using human keratinocytes. Coating of the MEW membranes with a sub‐µm collagen layer further improves the acoustic properties and facilitates cell adhesion.


Abstract

The tympanic membrane (TM) transfers sound waves from the air into mechanical motion for the ossicular chain. This requires a high sensitivity to small dynamic pressure changes and resistance to large quasi‐static pressure differences. The TM achieves this by providing a layered structure of about 100µm in thickness, a low flexural stiffness, and a high tensile strength. Chronically infected middle ears require reconstruction of a large area of the TM. However, current clinical treatment can cause a reduction in hearing. With the novel additive manufacturing technique of melt electrowriting (MEW), it is for the first time possible to fabricate highly organized and biodegradable membranes within the dimensions of the TM. Scaffold designs of various fiber composition are analyzed mechanically and acoustically. It can be demonstrated that by customizing fiber orientation, fiber diameter, and number of layers the desired properties of the TM can be met. An applied thin collagen lay er seals the micropores of the MEW‐printed membrane while keeping the favorable mechanical and acoustical characteristics. The determined properties are beneficial for implantation, closely match those of the human TM, and support the growth of a neo‐epithelial layer. This proves the possibilities to create a biomimimetic TM replacement using MEW.

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