Extremophile-based biohybrid micromotors for biomedical operations in harsh acidic environments
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Ronnie H. Fang | Yaou Duan | Liangfang Zhang | Weiwei Gao | Chuanrui Chen | Fangyu Zhang | Zhengxing Li | Lu Yin | Zhongyuan Guo | Mingyao Xu | Joseph Wang | Hao Luan
[1] Ronnie H. Fang,et al. Gastrointestinal tract drug delivery using algae motors embedded in a degradable capsule , 2022, Sci. Robotics.
[2] Ronnie H. Fang,et al. Nanoparticle-modified microrobots for in vivo antibiotic delivery to treat acute bacterial pneumonia , 2022, Nature Materials.
[3] G. Traverso,et al. Foundations of gastrointestinal-based drug delivery and future developments , 2021, Nature Reviews Gastroenterology & Hepatology.
[4] K L Smith,et al. Abyssal Benthic Rover, an autonomous vehicle for long-term monitoring of deep-ocean processes , 2021, Science Robotics.
[5] N. Roxhed,et al. Oral delivery of systemic monoclonal antibodies, peptides and small molecules using gastric auto-injectors , 2021, Nature Biotechnology.
[6] Liangfang Zhang,et al. ACE2 Receptor-Modified Algae-Based Microrobot for Removal of SARS-CoV-2 in Wastewater , 2021, Journal of the American Chemical Society.
[7] Ronnie H. Fang,et al. A Microstirring Pill Enhances Bioavailability of Orally Administered Drugs , 2021, Advanced science.
[8] Hui Xie,et al. Dual-responsive biohybrid neutrobots for active target delivery , 2021, Science Robotics.
[9] Lidong Yang,et al. Endoscopy-assisted magnetic navigation of biohybrid soft microrobots with rapid endoluminal delivery and imaging , 2021, Science Robotics.
[10] Metin Sitti,et al. Multifunctional surface microrollers for targeted cargo delivery in physiological blood flow , 2020, Science Robotics.
[11] M. Corredig,et al. INFOGEST static in vitro simulation of gastrointestinal food digestion , 2019, Nature Protocols.
[12] Stéphane Viollet,et al. AntBot: A six-legged walking robot able to home like desert ants in outdoor environments , 2019, Science Robotics.
[13] Robert Langer,et al. An ingestible self-orienting system for oral delivery of macromolecules , 2019, Science.
[14] Ronnie H. Fang,et al. Biomimetic Micromotor Enables Active Delivery of Antigens for Oral Vaccination. , 2019, Nano letters.
[15] Nancy Merino,et al. Living at the Extremes: Extremophiles and the Limits of Life in a Planetary Context , 2019, Front. Microbiol..
[16] K. White,et al. Metabolic adaptation of a Chlamydomonas acidophila strain isolated from acid mine drainage ponds with low eukaryotic diversity. , 2019, The Science of the total environment.
[17] P. Fischer,et al. A swarm of slippery micropropellers penetrates the vitreous body of the eye , 2018, Science Advances.
[18] Quanyin Hu,et al. Conjugation of haematopoietic stem cells and platelets decorated with anti-PD-1 antibodies augments anti-leukaemia efficacy , 2018, Nature Biomedical Engineering.
[19] Metin Sitti,et al. Microalga‐Powered Microswimmers toward Active Cargo Delivery , 2018, Advanced materials.
[20] Ronnie H. Fang,et al. Cell Membrane Coating Nanotechnology , 2018, Advanced materials.
[21] Wei Gao,et al. Micromotors Go In Vivo: From Test Tubes to Live Animals , 2018 .
[22] Metin Sitti,et al. Soft erythrocyte-based bacterial microswimmers for cargo delivery , 2018, Science Robotics.
[23] Vijay Kumar,et al. The grand challenges of Science Robotics , 2018, Science Robotics.
[24] T. Fujiwara,et al. Acidophilic green algal genome provides insights into adaptation to an acidic environment , 2017, Proceedings of the National Academy of Sciences.
[25] Berta Esteban-Fernández de Ávila,et al. Micromotor-enabled active drug delivery for in vivo treatment of stomach infection , 2017, Nature Communications.
[26] Hanumant Singh,et al. Inexpensive, small AUVs for studying ice-covered polar environments , 2017, Science Robotics.
[27] Jizhuang Wang,et al. Programmable artificial phototactic microswimmer. , 2016, Nature nanotechnology.
[28] Hannah C. Slater,et al. Oral, ultra–long-lasting drug delivery: Application toward malaria elimination goals , 2016, Science Translational Medicine.
[29] S. Martel,et al. Magneto-aerotactic bacteria deliver drug-containing nanoliposomes to tumour hypoxic regions , 2016, Nature nanotechnology.
[30] Mingjun Xuan,et al. Near Infrared Light-Powered Janus Mesoporous Silica Nanoparticle Motors. , 2016, Journal of the American Chemical Society.
[31] Oliver G Schmidt,et al. Cellular Cargo Delivery: Toward Assisted Fertilization by Sperm-Carrying Micromotors. , 2016, Nano letters.
[32] Oliver Lieleg,et al. Enzymatically active biomimetic micropropellers for the penetration of mucin gels , 2015, Science Advances.
[33] Samuel Sanchez,et al. Enzyme-Powered Hollow Mesoporous Janus Nanomotors. , 2015, Nano letters (Print).
[34] Liangfang Zhang,et al. Artificial Micromotors in the Mouse’s Stomach: A Step toward in Vivo Use of Synthetic Motors , 2014, ACS nano.
[35] Ronnie H. Fang,et al. Clearance of pathological antibodies using biomimetic nanoparticles , 2014, Proceedings of the National Academy of Sciences.
[36] D. Fischer,et al. Drug delivery strategies in the therapy of inflammatory bowel disease. , 2014, Advanced drug delivery reviews.
[37] Wei Wang,et al. Acoustic propulsion of nanorod motors inside living cells. , 2014, Angewandte Chemie.
[38] S. Honary,et al. Effect of Zeta Potential on the Properties of Nano-Drug Delivery Systems - A Review (Part 2) , 2013 .
[39] Joseph Wang,et al. Multi-fuel driven Janus micromotors. , 2013, Small.
[40] I. Nancucheo,et al. Acidophilic algae isolated from mine-impacted environments and their roles in sustaining heterotrophic acidophiles , 2012, Front. Microbio..
[41] Allen Pei,et al. Water-driven micromotors. , 2012, ACS nano.
[42] B. Parvin,et al. A molecular method for the delivery of small molecules and proteins across the cell wall of algae using molecular transporters , 2012, Proceedings of the National Academy of Sciences.
[43] Laura M Ensign,et al. Oral drug delivery with polymeric nanoparticles: the gastrointestinal mucus barriers. , 2012, Advanced drug delivery reviews.
[44] Omid C Farokhzad,et al. Targeted polymeric therapeutic nanoparticles: design, development and clinical translation. , 2012, Chemical Society reviews.
[45] Hirenkumar K. Makadia,et al. Poly Lactic-co-Glycolic Acid (PLGA) as Biodegradable Controlled Drug Delivery Carrier. , 2011, Polymers.
[46] Sirilak Sattayasamitsathit,et al. Highly efficient catalytic microengines: template electrosynthesis of polyaniline/platinum microtubes. , 2011, Journal of the American Chemical Society.
[47] O. Schmidt,et al. Catalytic microtubular jet engines self-propelled by accumulated gas bubbles. , 2009, Small.
[48] P. Fischer,et al. Controlled propulsion of artificial magnetic nanostructured propellers. , 2009, Nano letters.
[49] Lixin Dong,et al. Artificial bacterial flagella: Fabrication and magnetic control , 2009 .
[50] Yusuke Inoue,et al. Diet and Abdominal Autofluorescence Detected by in Vivo Fluorescence Imaging of Living Mice , 2008, Molecular imaging.
[51] J. Hedderich,et al. Gastric emptying time of fluids and solids in healthy subjects determined by 13C breath tests: influence of age, sex and body mass index , 2006, Journal of gastroenterology and hepatology.
[52] G. Whitesides,et al. Microoxen: microorganisms to move microscale loads. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[53] Yanyan Cao,et al. Catalytic nanomotors: autonomous movement of striped nanorods. , 2004, Journal of the American Chemical Society.
[54] W. Gross. Ecophysiology of algae living in highly acidic environments , 2000, Hydrobiologia.
[55] P. Stokes,et al. RESPONSES OF THE ACIDOPHILIC ALGA EUGLENA MUTABILIS (EUGLENOPHYCEAE) TO CARBON ENRICHMENT AT pH 3 1 , 1989 .