Nothing Special   »   [go: up one dir, main page]

Jin et al., 2018 - Google Patents

Dynamic sessile‐droplet habitats for controllable cultivation of bacterial biofilm

Jin et al., 2018

View PDF
Document ID
6134874198574012679
Author
Jin Z
Nie M
Hu R
Zhao T
Xu J
Chen D
Yun J
Ma L
Du W
Publication year
Publication venue
Small

External Links

Snippet

Bacterial biofilms play essential roles in biogeochemical cycling, degradation of environmental pollutants, infection diseases, and maintenance of host health. The lack of quantitative methods for growing and characterizing biofilms remains a major challenge in …
Continue reading at www.im.cas.cn (PDF) (other versions)

Classifications

    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12MAPPARATUS FOR ENZYMOLOGY OR MICROBIOLOGY; APPARATUS FOR CULTURING MICROORGANISMS FOR PRODUCING BIOMASS, FOR GROWING CELLS OR FOR OBTAINING FERMENTATION OR METABOLIC PRODUCTS, i.e. BIOREACTORS OR FERMENTERS
    • C12M23/00Constructional details, e.g. recesses, hinges
    • C12M23/34Internal compartments or partitions

Similar Documents

Publication Publication Date Title
Drescher et al. Biofilm streamers cause catastrophic disruption of flow with consequences for environmental and medical systems
Sun et al. High-throughput microfluidic system for long-term bacterial colony monitoring and antibiotic testing in zero-flow environments
Franklin et al. New technologies for studying biofilms
Pérez‐Rodríguez et al. Microfluidic devices for studying bacterial taxis, drug testing and biofilm formation
Eun et al. Encapsulating bacteria in agarose microparticles using microfluidics for high-throughput cell analysis and isolation
Zarabadi et al. Hydrodynamic effects on biofilms at the biointerface using a microfluidic electrochemical cell: Case study of Pseudomonas sp.
Jin et al. Dynamic sessile‐droplet habitats for controllable cultivation of bacterial biofilm
Bai et al. Applications of microfluidics in quantitative biology
CN102947710A (en) Hanging drop devices, systems and/or methods
Hansen et al. Stochastic assembly of bacteria in microwell arrays reveals the importance of confinement in community development
Täuber et al. dMSCC: a microfluidic platform for microbial single-cell cultivation of Corynebacterium glutamicum under dynamic environmental medium conditions
Iino et al. Design of a large-scale femtoliter droplet array for single-cell analysis of drug-tolerant and drug-resistant bacteria
Pratt et al. DropSOAC: stabilizing microfluidic drops for time-lapse quantification of single-cell bacterial physiology
Yuan et al. Microfluidics for biofilm studies
Huang et al. Dynamic control and quantification of bacterial population dynamics in droplets
Tan et al. What can microfluidics do for human microbiome research?
Park et al. Hypergravity-induced multicellular spheroid generation with different morphological patterns precisely controlled on a centrifugal microfluidic platform
Zhao et al. Pneumatic microfluidics-based multiplex single-cell array
Alkayyali et al. Development of a microbe domestication pod (MD Pod) for in situ cultivation of micro‐encapsulated marine bacteria
Guo et al. Single-cell variability of growth interactions within a two-species bacterial community
Viri et al. An in vivo microfluidic study of bacterial load dynamics and absorption in the C. elegans intestine
Ugolini et al. Microfluidic approaches in microbial ecology
CN102796659B (en) Porous single cell observation plate and use thereof
Ribbe et al. Density-dependent differentiation of bacteria in spatially structured open systems
Lee et al. Dynamic culture and selective extraction of target microbial cells in self-assembled particle membrane-integrated microfluidic bioreactor array