[1] |
Strunk T, Molloy E J, Mishra A, et al. Neonatal bacterial sepsis[J]. Lancet, 2024, 404(10449): 277-293.
|
[2] |
Celik IH, Hanna M, Canpolat FE, et al. Diagnosis of neonatal sepsis: the past, present and future[J]. Pediatr Res, 2022, 91(2): 337-350.
|
[3] |
Attia HMH, Parekh R, Dhandibhotla S, et al. Insight Into Neonatal Sepsis: An Overview[J]. Cureus, 2023, 15(9): e45530.
|
[4] |
Milton R, Gillespie D, Dyer C, et al. Neonatal sepsis and mortality in low-income and middle-income countries from a facility-based birth cohort: an international multisite prospective observational study[J]. Lancet Glob Health, 2022, 10(5): e661-e672.
|
[5] |
Fang P, Gao K, Yang J, et al. Prevalence of multidrug-resistant pathogens causing neonatal early and late onset sepsis, a retrospective study from the tertiary referral children's hospital[J]. Infect Drug Resist, 2023, 16: 4213-4225.
doi: 10.2147/IDR.S416020
pmid: 37404253
|
[6] |
Global incidence, prevalence, years lived with disability (YLDs), disability-adjusted life-years (DALYs), and healthy life expectancy (HALE) for 371 diseases and injuries in 204 countries and territories and 811 subnational locations, 1990-2021: a systematic analysis for the Global Burden of Disease Study 2021[J]. Lancet, 2024, 403(10440): 2133-2161.
|
[7] |
Global burden and strength of evidence for 88 risk factors in 204 countries and 811 subnational locations, 1990-2021: a systematic analysis for the Global Burden of Disease Study 2021[J]. Lancet, 2024, 403(10440): 2162-2203.
doi: 10.1016/S0140-6736(24)00933-4
pmid: 38762324
|
[8] |
Global age-sex-specific mortality, life expectancy, and population estimates in 204 countries and territories and 811 subnational locations, 1950-2021, and the impact of the COVID-19 pandemic: a comprehensive demographic analysis for the Global Burden of Disease Study 2021[J]. Lancet, 2024, 403(10440): 1989-2056.
doi: 10.1016/S0140-6736(24)00476-8
pmid: 38484753
|
[9] |
Kim HJ, Fay MP, Feuer EJ, et al. Permutation tests for joinpoint regression with applications to cancer rates[J]. Stat Med, 2000, 19(3): 335-351.
doi: 10.1002/(sici)1097-0258(20000215)19:3<335::aid-sim336>3.0.co;2-z
pmid: 10649300
|
[10] |
Wang X, Xiu R, Gong L, et al. Unraveling the global burden of inflammatory bowel disease (1990-2019): A Joinpoint regression analysis of divergent trends in 10-24 and 50-69 age cohorts[J]. Autoimmun Rev, 2024, 23(6): 103586.
|
[11] |
Riebler A, Held L. Projecting the future burden of cancer: Bayesian age-period-cohort analysis with integrated nested Laplace approximations[J]. Biom J, 2017, 59(3): 531-549.
doi: 10.1002/bimj.201500263
pmid: 28139001
|
[12] |
Cao G, Liu J, Liu M. Global, regional, and national incidence and mortality of neonatal preterm birth, 1990-2019[J]. JAMA Pediatr, 2022, 176(8): 787-796.
|
[13] |
Ryan L, Plötz FB, van den Hoogen A, et al. Neonates and COVID-19: state of the art : Neonatal Sepsis series[J]. Pediatr Res, 2022, 91(2): 432-439.
|
[14] |
Guo L, Han W, Su Y, et al. Perinatal risk factors for neonatal early-onset sepsis: a meta-analysis of observational studies[J]. J Matern Fetal Neonatal Med, 2023, 36(2): 2259049.
|
[15] |
Benitz WE, Achten NB. Technical assessment of the neonatal early-onset sepsis risk calculator[J]. Lancet Infect Dis, 2021, 21(5): e134-e140.
|
[16] |
Achten NB, Klingenberg C, Benitz WE, et al. Association of use of the neonatal early-onset sepsis calculator with reduction in antibiotic therapy and safety: a systematic review and meta-analysis[J]. JAMA Pediatr, 2019, 173(11): 1032-1040.
doi: 10.1001/jamapediatrics.2019.2825
|
[17] |
Prevention of Group B Streptococcal Early-Onset Disease in Newborns: ACOG Committee Opinion, Number 797[J]. Obstet Gynecol, 2020, 135(2): e51-e72.
|
[18] |
Giannoni E, Dimopoulou V, Klingenberg C, et al. Analysis of antibiotic exposure and early-onset neonatal sepsis in Europe, North America, and Australia[J]. JAMA Netw Open, 2022, 5(11): e2243691.
|
[19] |
Yu Y, Dong Q, Li S, et al. Etiology and clinical characteristics of neonatal sepsis in different medical setting models: A retrospective multi-center study[J]. Front Pediatr, 2022, 10: 1004750.
|
[20] |
Qiu Y, Yang J, Chen Y, et al. Microbiological profiles and antimicrobial resistance patterns of pediatric bloodstream pathogens in China, 2016-2018[J]. Eur J Clin Microbiol Infect Dis, 2021, 40(4): 739-749.
|
[21] |
Dudeja S. Neonatal Sepsis: Treatment of neonatal sepsis in multidrug-resistant (MDR) infections: Part 2[J]. Indian J Pediatr, 2020, 87(2): 122-124.
doi: 10.1007/s12098-019-03152-7
pmid: 31900849
|
[22] |
Correction: Towards understanding global patterns of antimicrobial use and resistance in neonatal sepsis: insights from the NeoAMR network[J]. Arch Dis Child, 2020, 105(5): 519.
doi: 10.1136/archdischild-2019-316816corr1
pmid: 32220828
|
[23] |
Popescu CR, Cavanagh M, Tembo B, et al. Neonatal sepsis in low-income countries: epidemiology, diagnosis and prevention[J]. Expert Rev Anti Infect Ther, 2020, 18(5): 443-452.
doi: 10.1080/14787210.2020.1732818
pmid: 32070161
|
[24] |
Batthula V, Somnath SH, Datta V. Reducing late-onset neonatal sepsis in very low birthweight neonates with central lines in a low-and-middle-income country setting[J]. BMJ Open Qual, 2021, 10(Suppl 1): e001353.
|
[25] |
Zhang HX, Zhao YY, Wang YQ. Analysis of the characteristics of pregnancy and delivery before and after implementation of the two-child policy[J]. Chin Med J (Engl), 2018, 131(1): 37-42.
|
[26] |
Ma Y, Hu M, Zafar Q. Analysis of the impact of external debt on health in an emerging Asian economy: Does FDI matter?[J]. Front Public Health, 2022, 10: 824073.
|
[27] |
Bang A, Deshmukh M, Baitule S, et al. Decline in the incidence of neonatal sepsis in rural gadchiroli, india during the twenty-one years (1998-2019) following the home-based neonatal care field-trial[J]. Pediatr Infect Dis J, 2021, 40(11): 1029-1033.
|
[28] |
Bang A, Baitule S, Deshmukh M, et al. Home-based management of neonatal sepsis: 23 years of sustained implementation and effectiveness in rural Gadchiroli, India, 1996-2019[J]. BMJ Glob Health, 2022, 7(9): e008469.
|
[29] |
Global burden of 288 causes of death and life expectancy decomposition in 204 countries and territories and 811 subnational locations, 1990-2021: a systematic analysis for the Global Burden of Disease Study 2021[J]. Lancet, 2024, 403(10440): 2100-2132.
|