BioDesignManuf's profile picture. BDM journal reports new research/technology in the field of biomanufacturing
Published by Zhejiang University Press & Springer Nature
Impact factor: 7.6 (2025)

Bio-Design and Manufacturing

@BioDesignManuf

BDM journal reports new research/technology in the field of biomanufacturing Published by Zhejiang University Press & Springer Nature Impact factor: 7.6 (2025)

Automated device for small-tissue extraction and primary organoid modeling Learn more: doi.org/10.1631/bdm.25… @Tsinghua_Uni

BioDesignManuf's tweet image. Automated device for small-tissue extraction and primary organoid modeling

Learn more: doi.org/10.1631/bdm.25…

@Tsinghua_Uni
BioDesignManuf's tweet image. Automated device for small-tissue extraction and primary organoid modeling

Learn more: doi.org/10.1631/bdm.25…

@Tsinghua_Uni
BioDesignManuf's tweet image. Automated device for small-tissue extraction and primary organoid modeling

Learn more: doi.org/10.1631/bdm.25…

@Tsinghua_Uni

Microporous 3D bioprinting: a novel technology for biofabrication Learn more: doi.org/10.1631/bdm.24… @SCUCN

BioDesignManuf's tweet image. Microporous 3D bioprinting: a novel technology for biofabrication

Learn more: doi.org/10.1631/bdm.24…

@SCUCN
BioDesignManuf's tweet image. Microporous 3D bioprinting: a novel technology for biofabrication

Learn more: doi.org/10.1631/bdm.24…

@SCUCN
BioDesignManuf's tweet image. Microporous 3D bioprinting: a novel technology for biofabrication

Learn more: doi.org/10.1631/bdm.24…

@SCUCN

Silk fibroin bandage for preventing tendon adhesions Learn more: doi.org/10.1631/bdm.24… @ZJU_China @NJU1902

BioDesignManuf's tweet image. Silk fibroin bandage for preventing tendon adhesions

Learn more: doi.org/10.1631/bdm.24…

@ZJU_China @NJU1902
BioDesignManuf's tweet image. Silk fibroin bandage for preventing tendon adhesions

Learn more: doi.org/10.1631/bdm.24…

@ZJU_China @NJU1902
BioDesignManuf's tweet image. Silk fibroin bandage for preventing tendon adhesions

Learn more: doi.org/10.1631/bdm.24…

@ZJU_China @NJU1902

Design-simulation-manufacturing-assessment framework for geometric optimization of polymeric heart valves toward enhanced durability Learn more: doi.org/10.1631/bdm.25… @FudanUniversity

BioDesignManuf's tweet image. Design-simulation-manufacturing-assessment framework for geometric
optimization of polymeric heart valves toward enhanced durability

Learn more: doi.org/10.1631/bdm.25…

@FudanUniversity
BioDesignManuf's tweet image. Design-simulation-manufacturing-assessment framework for geometric
optimization of polymeric heart valves toward enhanced durability

Learn more: doi.org/10.1631/bdm.25…

@FudanUniversity

Targeting cyclooxygenase-2 using photothermal-anti-inflammatory nanoparticles to inhibit tumor growth and metastasis Learn more: doi.org/10.1631/bdm.24…

BioDesignManuf's tweet image. Targeting cyclooxygenase-2 using photothermal-anti-inflammatory nanoparticles to inhibit tumor growth and metastasis

Learn more: doi.org/10.1631/bdm.24…
BioDesignManuf's tweet image. Targeting cyclooxygenase-2 using photothermal-anti-inflammatory nanoparticles to inhibit tumor growth and metastasis

Learn more: doi.org/10.1631/bdm.24…
BioDesignManuf's tweet image. Targeting cyclooxygenase-2 using photothermal-anti-inflammatory nanoparticles to inhibit tumor growth and metastasis

Learn more: doi.org/10.1631/bdm.24…

Nuclear-targeted reactive oxygen species burst: a self-amplifying nanoplatform that overcomes hypoxia and redox barriers for enhanced sonodynamic cancer therapy Learn more: doi.org/10.1631/bdm.25… @Beihang1952

BioDesignManuf's tweet image. Nuclear-targeted reactive oxygen species burst: a self-amplifying nanoplatform that overcomes hypoxia and redox barriers for enhanced sonodynamic cancer therapy

Learn more: doi.org/10.1631/bdm.25…

@Beihang1952
BioDesignManuf's tweet image. Nuclear-targeted reactive oxygen species burst: a self-amplifying nanoplatform that overcomes hypoxia and redox barriers for enhanced sonodynamic cancer therapy

Learn more: doi.org/10.1631/bdm.25…

@Beihang1952
BioDesignManuf's tweet image. Nuclear-targeted reactive oxygen species burst: a self-amplifying nanoplatform that overcomes hypoxia and redox barriers for enhanced sonodynamic cancer therapy

Learn more: doi.org/10.1631/bdm.25…

@Beihang1952

A hyaluronic acid-enhanced 3D-bioprinted osteosarcoma model reveals mechanisms of tumor metastasis and chemoresistance Learn more: doi.org/10.1631/bdm.24… @NBUniversity

BioDesignManuf's tweet image. A hyaluronic acid-enhanced 3D-bioprinted osteosarcoma model reveals mechanisms of tumor metastasis and chemoresistance

Learn more: doi.org/10.1631/bdm.24…

@NBUniversity
BioDesignManuf's tweet image. A hyaluronic acid-enhanced 3D-bioprinted osteosarcoma model reveals mechanisms of tumor metastasis and chemoresistance

Learn more: doi.org/10.1631/bdm.24…

@NBUniversity
BioDesignManuf's tweet image. A hyaluronic acid-enhanced 3D-bioprinted osteosarcoma model reveals mechanisms of tumor metastasis and chemoresistance

Learn more: doi.org/10.1631/bdm.24…

@NBUniversity

Reactive oxygen species scavenging hydrogel for wound healing in diabetic mice Learn more: doi.org/10.1631/bdm.24… @CCZU1978

BioDesignManuf's tweet image. Reactive oxygen species scavenging hydrogel for wound healing in diabetic mice

Learn more: doi.org/10.1631/bdm.24…

@CCZU1978
BioDesignManuf's tweet image. Reactive oxygen species scavenging hydrogel for wound healing in diabetic mice

Learn more: doi.org/10.1631/bdm.24…

@CCZU1978
BioDesignManuf's tweet image. Reactive oxygen species scavenging hydrogel for wound healing in diabetic mice

Learn more: doi.org/10.1631/bdm.24…

@CCZU1978

Evaluation of the 3D printable temperature-responsive shape-memory PLTG terpolymers for minimally invasive surgery Learn more: doi.org/10.1631/bdm.24… @ZJU_China @SCUCN

BioDesignManuf's tweet image. Evaluation of the 3D printable temperature-responsive shape-memory PLTG terpolymers for minimally invasive surgery

Learn more: doi.org/10.1631/bdm.24…

@ZJU_China @SCUCN
BioDesignManuf's tweet image. Evaluation of the 3D printable temperature-responsive shape-memory PLTG terpolymers for minimally invasive surgery

Learn more: doi.org/10.1631/bdm.24…

@ZJU_China @SCUCN
BioDesignManuf's tweet image. Evaluation of the 3D printable temperature-responsive shape-memory PLTG terpolymers for minimally invasive surgery

Learn more: doi.org/10.1631/bdm.24…

@ZJU_China @SCUCN

Uniting an academic community via Bio-Design and Manufacturing Learn more: link.springer.com/article/10.163…

BioDesignManuf's tweet image. Uniting an academic community via Bio-Design and Manufacturing

Learn more: link.springer.com/article/10.163…

Integrating three-dimensional printing and bioprinting technologies to develop a stretchable in vitro model of the human airway Learn more: doi.org/10.1631/bdm.24… @UniHeidelberg

BioDesignManuf's tweet image. Integrating three-dimensional printing and bioprinting technologies to develop a stretchable in vitro model of the human airway

Learn more: doi.org/10.1631/bdm.24…

@UniHeidelberg
BioDesignManuf's tweet image. Integrating three-dimensional printing and bioprinting technologies to develop a stretchable in vitro model of the human airway

Learn more: doi.org/10.1631/bdm.24…

@UniHeidelberg
BioDesignManuf's tweet image. Integrating three-dimensional printing and bioprinting technologies to develop a stretchable in vitro model of the human airway

Learn more: doi.org/10.1631/bdm.24…

@UniHeidelberg

A unique bioreactor that offers synchronized physiological-like electrical and mechanical stimuli for cardiac tissue engineering Learn more: doi.org/10.1631/bdm.24… @TechnionLive @arieluniversity

BioDesignManuf's tweet image. A unique bioreactor that offers synchronized physiological-like electrical and mechanical stimuli for cardiac tissue engineering

Learn more: doi.org/10.1631/bdm.24…

@TechnionLive @arieluniversity
BioDesignManuf's tweet image. A unique bioreactor that offers synchronized physiological-like electrical and mechanical stimuli for cardiac tissue engineering

Learn more: doi.org/10.1631/bdm.24…

@TechnionLive @arieluniversity
BioDesignManuf's tweet image. A unique bioreactor that offers synchronized physiological-like electrical and mechanical stimuli for cardiac tissue engineering

Learn more: doi.org/10.1631/bdm.24…

@TechnionLive @arieluniversity

Microneedle-loaded hybrid extracellular vesicles promote diabetic wound healing Learn more: doi.org/10.1631/bdm.25… @SHU19945

BioDesignManuf's tweet image. Microneedle-loaded hybrid extracellular vesicles promote diabetic wound healing

Learn more: doi.org/10.1631/bdm.25…

@SHU19945
BioDesignManuf's tweet image. Microneedle-loaded hybrid extracellular vesicles promote diabetic wound healing

Learn more: doi.org/10.1631/bdm.25…

@SHU19945
BioDesignManuf's tweet image. Microneedle-loaded hybrid extracellular vesicles promote diabetic wound healing

Learn more: doi.org/10.1631/bdm.25…

@SHU19945

Engineered inflammation-induced neurodevelopmental disorders using a neurovascular-unit-on-a-chip Learn more: doi.org/10.1631/bdm.24… @StudyatUSTC

BioDesignManuf's tweet image. Engineered inflammation-induced neurodevelopmental disorders using a neurovascular-unit-on-a-chip

Learn more: doi.org/10.1631/bdm.24…

@StudyatUSTC
BioDesignManuf's tweet image. Engineered inflammation-induced neurodevelopmental disorders using a neurovascular-unit-on-a-chip

Learn more: doi.org/10.1631/bdm.24…

@StudyatUSTC
BioDesignManuf's tweet image. Engineered inflammation-induced neurodevelopmental disorders using a neurovascular-unit-on-a-chip

Learn more: doi.org/10.1631/bdm.24…

@StudyatUSTC

Bone implants with triply periodic minimal surface architectures: design, fabrication, and biological performance Learn more: doi.org/10.1631/bdm.24… @NBUniversity @ZJU_China

BioDesignManuf's tweet image. Bone implants with triply periodic minimal surface architectures: design, fabrication, and biological performance

Learn more: doi.org/10.1631/bdm.24…

@NBUniversity @ZJU_China
BioDesignManuf's tweet image. Bone implants with triply periodic minimal surface architectures: design, fabrication, and biological performance

Learn more: doi.org/10.1631/bdm.24…

@NBUniversity @ZJU_China
BioDesignManuf's tweet image. Bone implants with triply periodic minimal surface architectures: design, fabrication, and biological performance

Learn more: doi.org/10.1631/bdm.24…

@NBUniversity @ZJU_China

A redox-responsive nanovaccine for cytosolic delivery of antigen and adjuvant to enhance cancer immunotherapy Learn more: doi.org/10.1631/bdm.24… @jnu1906

BioDesignManuf's tweet image. A redox-responsive nanovaccine for cytosolic delivery of antigen and adjuvant to enhance cancer immunotherapy

Learn more: doi.org/10.1631/bdm.24…

@jnu1906
BioDesignManuf's tweet image. A redox-responsive nanovaccine for cytosolic delivery of antigen and adjuvant to enhance cancer immunotherapy

Learn more: doi.org/10.1631/bdm.24…

@jnu1906
BioDesignManuf's tweet image. A redox-responsive nanovaccine for cytosolic delivery of antigen and adjuvant to enhance cancer immunotherapy

Learn more: doi.org/10.1631/bdm.24…

@jnu1906

Congratulations @JoshWeyg for receiving the Best Oral Presentation Award at our 5th International Conference on Biomaterials, Bio-design & Manufacturing at the @UniofOxford last weekend! See his LinkedIn post here: linkedin.com/posts/joshuawe…

BioDesignManuf's tweet image. Congratulations @JoshWeyg for receiving the Best Oral Presentation Award at our 5th International Conference on Biomaterials, Bio-design & Manufacturing at the @UniofOxford last weekend! 

See his LinkedIn post here:
linkedin.com/posts/joshuawe…

Homologous cancer cell membrane-camouflaged natural pH-sensitive chalk for enhanced drug targeting delivery in hepatocellular carcinoma doi.org/10.1631/bdm.24… @ZJU_China @CCZU1978

BioDesignManuf's tweet image. Homologous cancer cell membrane-camouflaged natural pH-sensitive chalk for enhanced drug targeting delivery in hepatocellular carcinoma

doi.org/10.1631/bdm.24…

@ZJU_China @CCZU1978
BioDesignManuf's tweet image. Homologous cancer cell membrane-camouflaged natural pH-sensitive chalk for enhanced drug targeting delivery in hepatocellular carcinoma

doi.org/10.1631/bdm.24…

@ZJU_China @CCZU1978
BioDesignManuf's tweet image. Homologous cancer cell membrane-camouflaged natural pH-sensitive chalk for enhanced drug targeting delivery in hepatocellular carcinoma

doi.org/10.1631/bdm.24…

@ZJU_China @CCZU1978

Mechanical regulation and 3D bioprinting of native tissue-inspired granular composite hydrogels Learn more: doi.org/10.1631/bdm.25… @Tsinghua_Uni

BioDesignManuf's tweet image. Mechanical regulation and 3D bioprinting of native tissue-inspired granular composite hydrogels

Learn more: doi.org/10.1631/bdm.25…

@Tsinghua_Uni
BioDesignManuf's tweet image. Mechanical regulation and 3D bioprinting of native tissue-inspired granular composite hydrogels

Learn more: doi.org/10.1631/bdm.25…

@Tsinghua_Uni
BioDesignManuf's tweet image. Mechanical regulation and 3D bioprinting of native tissue-inspired granular composite hydrogels

Learn more: doi.org/10.1631/bdm.25…

@Tsinghua_Uni

Bioinspired magnetic microspikerobot for long-term drug delivery anchoring on gliomas Learn more: doi.org/10.1631/bdm.24… @UCAS1978 @JournalNJFU

BioDesignManuf's tweet image. Bioinspired magnetic microspikerobot for long-term drug delivery anchoring on gliomas

Learn more: doi.org/10.1631/bdm.24…

@UCAS1978 @JournalNJFU
BioDesignManuf's tweet image. Bioinspired magnetic microspikerobot for long-term drug delivery anchoring on gliomas

Learn more: doi.org/10.1631/bdm.24…

@UCAS1978 @JournalNJFU
BioDesignManuf's tweet image. Bioinspired magnetic microspikerobot for long-term drug delivery anchoring on gliomas

Learn more: doi.org/10.1631/bdm.24…

@UCAS1978 @JournalNJFU

Loading...

Something went wrong.


Something went wrong.