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Siemens Healthineers 3d multimodality workstation
3d Multimodality Workstation, supplied by Siemens Healthineers, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/3d+immersive+visualization+program/3d+inveon+multimodality+program+visualization/pmc12883442-110-8-14
Average 86 stars, based on 1 article reviews
3d multimodality workstation - by Bioz Stars, 2026-09
86/100 stars

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Article Title: Diagnostic efficacy of dual-energy computed tomography-based fractal analysis for assessing extramural venous invasion/tumor deposits and peripheral nerve invasion in rectal cancer
Article Snippet: The DECT data underwent postprocessing on a commercial 3D multimodality workstation (syngo.via v. VA30A, Siemens Healthineers) with a customized soft tissue convolution kernel (Qr40, Siemens Healthineers) and an iterative reconstruction technique at a strength level of 3 [advanced modeled iterative reconstruction (ADMIRE); Siemens Healthineers].

Article Title: Nature-inspired IL-1 targeted therapy to treat chronic inflammatory diseases
Article Snippet: Alternatively, the Inveon multimodality 3D visualization program (Siemens Medical Solutions) was used for 3D rendering of fused static and dynamic microCT modalities.

Article Title: Nature-inspired IL-1 targeted therapy to treat chronic inflammatory diseases.
Article Snippet: Alternatively, the Inveon multimodality 3D visualization program (Siemens Medical 715 Solutions USA, Inc.) was used for 3D rendering of fused static and dynamic microCT 716 modalities.

Software:

Article Title: Teaching and evolution in surgical planning of robotic partial nephrectomy with 3D printing models
Article Snippet: .. These DICOM images were subjected to a segmentation process (average time 30–35 min), using the Syngovia Frontier 3D Printing software (Siemens Healthineers). ..

Article Title: Teaching and evolution in surgical planning of robotic partial nephrectomy with 3D printing models.
Article Snippet: .. These DICOM images were subjected to a segmentation process (average time 30–35 min), using the Syngovia Frontier 3D Printing software (Siemens Healthineers). ..

Article Title: Revolutionizing Bone Tumor Therapy: Biodegradable Magnesium Implant Triggers cGAS‐STING‐Dependent Synergy of Autophagic Cell Death and Alkaline Metabolic Collapse
Article Snippet: Bone tumors are challenging to eradicate, with conventional limb-salvage surgeries often leading to high rates of recurrence, metastasis, and severe functional impairments due to large bone defects.. Traditional therapies struggle to balance tumor elimination with bone preservation and functional restoration.. This study presents a novel therapeutic strategy utilizing high-purity biodegradable magnesium (Mg) implants, which induce dual-mode bone tumor death orchestrated by the cGAS-STING pathway.

Article Title: Self-healing poly(lactic acid) film incorporated with phytic acid on dicalcium phosphate dihydrate-coated magnesium for corrosion protection in orthopedic applications
Article Snippet: A R T I C L E I N F O

Article Title: Ultrasmall Pt nanoparticles modified bioenergetic-active implant for osteoporotic bone treatment via MSCs reprogramming and immunomodulation
Article Snippet: The collected femoral condyles were scanned using a Micro-CT analyzer (InveonTM Multi-Modality; Siemens Medical Solutions, Germany). .. The BV/TV, Tb.N, BMD, Tb.Sp were calculated using VG Studio MAX software, while three-dimensional (3D) images were reconstructed using Multimodal 3D Visualization (Siemens Medical Solutions, Germany) software. ..



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syGlass Inc 3d immersive visualization program
Experimental design for cell counting using <t>3D</t> virtual reality. (A) Serial sections containing MNTB from Cre;Ai9 mice were stained with cell-specific antibodies for neurons (Map2), astrocytes (Aldh1L1), oligodendrocytes (Sox10) and microglia (Iba1), in an alternating manner, along with DAPI. These slices were imaged with a 40× objective and tiled. The MNTB is outlined in white in each section and the midline is indicated by a dashed white line. Scale bar = 100 μm. (B) The MNTB was cropped from the larger image and imported <t>into</t> <t>syGlass</t> for cell counting in 3D virtual reality. The solid and dashed white lines demarcate cut planes that were rotated to generate the 3D view in C (arrow). Scale bar = 50 μm. (C) Rotated view of part of MNTB to illustrate 3D view for cell counting. Counting dots were placed onto the nuclei. White dots indicate incomplete (sectioned) nuclei in the first slice of the z-stack. These were excluded from analysis, but incomplete nuclei in the bottom slice were counted and included in the analysis. Red dots indicate cells that were counted. Note that cells throughout the entire MNTB (panel B) were counted.
3d Immersive Visualization Program, supplied by syGlass Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/3d+immersive+visualization+program/virtual+reality+software/pmc09245928-234-2-1
Average 90 stars, based on 1 article reviews
3d immersive visualization program - by Bioz Stars, 2026-09
90/100 stars
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Experimental design for cell counting using 3D virtual reality. (A) Serial sections containing MNTB from Cre;Ai9 mice were stained with cell-specific antibodies for neurons (Map2), astrocytes (Aldh1L1), oligodendrocytes (Sox10) and microglia (Iba1), in an alternating manner, along with DAPI. These slices were imaged with a 40× objective and tiled. The MNTB is outlined in white in each section and the midline is indicated by a dashed white line. Scale bar = 100 μm. (B) The MNTB was cropped from the larger image and imported into syGlass for cell counting in 3D virtual reality. The solid and dashed white lines demarcate cut planes that were rotated to generate the 3D view in C (arrow). Scale bar = 50 μm. (C) Rotated view of part of MNTB to illustrate 3D view for cell counting. Counting dots were placed onto the nuclei. White dots indicate incomplete (sectioned) nuclei in the first slice of the z-stack. These were excluded from analysis, but incomplete nuclei in the bottom slice were counted and included in the analysis. Red dots indicate cells that were counted. Note that cells throughout the entire MNTB (panel B) were counted.

Journal: Developmental neurobiology

Article Title: Glial Cell Expansion Coincides with Neural Circuit Formation in the Developing Auditory Brainstem

doi: 10.1002/dneu.22633

Figure Lengend Snippet: Experimental design for cell counting using 3D virtual reality. (A) Serial sections containing MNTB from Cre;Ai9 mice were stained with cell-specific antibodies for neurons (Map2), astrocytes (Aldh1L1), oligodendrocytes (Sox10) and microglia (Iba1), in an alternating manner, along with DAPI. These slices were imaged with a 40× objective and tiled. The MNTB is outlined in white in each section and the midline is indicated by a dashed white line. Scale bar = 100 μm. (B) The MNTB was cropped from the larger image and imported into syGlass for cell counting in 3D virtual reality. The solid and dashed white lines demarcate cut planes that were rotated to generate the 3D view in C (arrow). Scale bar = 50 μm. (C) Rotated view of part of MNTB to illustrate 3D view for cell counting. Counting dots were placed onto the nuclei. White dots indicate incomplete (sectioned) nuclei in the first slice of the z-stack. These were excluded from analysis, but incomplete nuclei in the bottom slice were counted and included in the analysis. Red dots indicate cells that were counted. Note that cells throughout the entire MNTB (panel B) were counted.

Article Snippet: The syGlass 3D immersive visualization program was used to perform cell counts because it enables rapid and accurate assessment of sectioned DAPI-labeled nuclei at the edge of the first image plane , and it permits accurate assessment of spatial association of markers with DAPI in three dimensions.

Techniques: Cell Counting, Staining