A novel anti-caries approach to modulate virulence of cariogenic biofilms
A novel anti-caries approach to modulate virulence of cariogenic biofilms
批准号:
9768199
负责人:
Hyun Koo
金额:
$45.65万
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-02-19 至 2021-08-31
关键词:
3-DimensionalAcidsAddressAffectAffinityArchitectureBacteriaBehaviorBindingBiologicalCaries preventionCharacteristicsChemistryChlorhexidineClinical ResearchCombined Modality TherapyCost of IllnessDataDentalDental EnamelDental MaterialsDental cariesDevelopmentDisease modelDropsDrug Delivery SystemsEffectivenessEncapsulatedEnsureEvaluationExhibitsFarnesolFluoridesFoodFormulationFoundationsFundingGastrointestinal tract structureGene ExpressionGingivaGoldHumanImmunohistochemistryIn SituIn VitroKineticsLeadLesionMechanicsMediatingMethodologyMethodsMicrobial BiofilmsModalityModelingMolecular TargetNanotechnologyOral mucous membrane structureOrganOutcomePathologicPharmaceutical PreparationsPhysiologicalPolymer ChemistryPolymersPopulationPreventivePropertyRodent ModelRouteSeveritiesSiteSolubilityStreptococcus mutansStructureSurfaceTherapeutic AgentsTissuesTooth structureToothpasteTopical applicationTreatment EfficacyTreatment ProtocolsUnited States National Institutes of HealthVirulenceVirulence FactorsWaterWorkacid stressanticariesantimicrobialaqueousbasebiomaterial compatibilityclinical developmentclinical efficacyclinical translationclinically relevantclinically translatablecohesioncostdental biofilmdrug efficacydrug release kineticsefficacy studyflexibilityimprovedin vitro activityin vivoin vivo evaluationmicrobialmyricetinnanocarriernanoparticlenovelnovel therapeutic interventionpreventproduct developmentspatiotemporalstress tolerancetargeted deliverytooth surface
中文摘要
项目总结
英文摘要
Project Summary
The development of novel chemotherapeutic approaches against cariogenic biofilms is challenging. Bacteria
within biofilms are enmeshed in an exopolysaccharides (EPS)-rich matrix. Furthermore, EPS-embedded
bacteria also create highly protected and acidic microenvironments that promote cariogenic biofilm build-up
and acid-dissolution of tooth enamel. To overcome these remarkable challenges, our previous NIH supported
(DE018023) studies developed a potent anti-caries approach by combining food-derived antibiofilm agents
(myricetin and farnesol) with fluoride. We demonstrated that these agents in combination severely compromise
EPS-matrix assembly and cariogenic biofilm development, resulting in a highly effective anti-caries therapy in
vivo. Despite promising activity, there are limitations for further development and clinical translation of this
approach. Both farnesol and myricetin are insoluble in aqueous solutions. In addition, retention of these agents
at tooth-biofilm interface could be enhanced to maximize their efficacy in vivo. To address these hurdles, we
have developed pH-responsive nanoparticle carriers (NPC) capable of co-encapsulating myricetin (Myr) and
farnesol (Far) which were completely water-soluble, important towards practical formulations for human use.
Furthermore, topically applied NPC bind avidly to pellicle and EPS, and accumulate within biofilms. Excitingly,
NPC respond to acidic pH to release agents more rapidly at acidic (pathological) versus neutral (physiological)
pH, greatly improving (~20-fold more effective than free agents) antibiofilm activity in vitro. We hypothesize that
NPC will substantially amplify the efficacy of our combination therapy (CT) via increased solubility, retention
and pH-activated release of active agents with fluoride. To support our hypothesis, Aim 1 will optimize
physicochemical properties of NPC to improve targeted delivery of our agents, and thereby potentiate their
antibiofilm efficacy. We will focus on increasing the kinetics of NPC pH-responsive drug release to ensure
maximal release of the agents at pH consistent with the acidic biofilm milieu. Then, Aim 2 will evaluate the
efficacy of optimized NPCs containing Myr and Far with fluoride (CT-NPC) using our in vitro cariogenic biofilm
model. We have previously identified the major biological actions (EPS synthesis and acidogenicity) and
molecular targets (gtfB, atpD) of our therapy. Thus, we will investigate how CT-NPC disrupts these virulence
properties more effectively than CT using novel methods to assess spatiotemporal development of EPS matrix,
acidic pH niches and gene expression in situ within intact 3D biofilms. Aim 3 will evaluate the efficacy of the
developed CT-NPC in disrupting cariogenic biofilms and reducing dental caries in vivo using a rodent model of
dental caries under clinically-relevant topical treatment regimen. CT-NPC will be also compared to `gold
standards' of caries prevention (fluoride) and antimicrobial therapy (chlorhexidine). Successful completion of
these aims will lead to a highly efficacious and clinically-translatable therapy that may be superior to current
anti-plaque/anti-caries modalities and will motivate formulation development for clinical studies.
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DOI:
10.1038/s41522-020-00181-5
发表时间:
2021-01-22
期刊:
NPJ biofilms and microbiomes
影响因子:
9.2
作者:
[Simon-Soro A, Kim D, Li Y, Liu Y, Ito T, Sims KR Jr, Benoit DSW, Bittinger K, Koo H]
通讯作者:
Koo H
DOI:
10.1186/1471-2180-9-228
发表时间:
2009-10-28
期刊:
BMC microbiology
影响因子:
4.2
作者:
[Jeon JG, Klein MI, Xiao J, Gregoire S, Rosalen PL, Koo H]
通讯作者:
Koo H
Candida albicans stimulates Streptococcus mutans microcolony development via cross-kingdom biofilm-derived metabolites.
白色念珠菌通过跨王室生物膜衍生的代谢产物刺激链球菌突变体的微殖民发育。
DOI:
10.1038/srep41332
发表时间:
2017-01-30
期刊:
Scientific reports
影响因子:
4.6
作者:
[Kim D, Sengupta A, Niepa TH, Lee BH, Weljie A, Freitas-Blanco VS, Murata RM, Stebe KJ, Lee D, Koo H]
通讯作者:
Koo H
DOI:
10.3389/fmicb.2017.01036
发表时间:
2017
期刊:
Frontiers in microbiology
影响因子:
5.2
作者:
[He J, Kim D, Zhou X, Ahn SJ, Burne RA, Richards VP, Koo H]
通讯作者:
Koo H
DOI:
10.1038/srep30578
发表时间:
2016-08-01
期刊:
Scientific reports
影响因子:
4.6
作者:
[Niepa TH, Hou L, Jiang H, Goulian M, Koo H, Stebe KJ, Lee D]
通讯作者:
Lee D
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