Page 75 - 磁共振成像2024年7期电子刊
P. 75
临床研究||Clinical Articles 磁共振成像 2024年7月第15卷第7期 Chin J Magn Reson Imaging, Jul, 2024, Vol. 15, No. 7
4 结论 [11] ZHU Y S, GAO H, TONG L, et al. Emotion regulation of hippocampus
using real-time fMRI neurofeedback in healthy human[J/OL]. Front
本研究基于 rtfMRI-NF 技术调控 ID 患者杏仁核 Hum Neurosci, 2019, 13: 242 [2024-03-29]. https://pubmed.ncbi.nlm.
nih.gov/31379539/. DOI: 10.3389/fnhum.2019.00242.
活性,重塑了部分与失眠相关脑区功能,提高了 ID患 [12] DUDEK E, DODELL-FEDER D. The efficacy of real-time functional
者睡眠质量。这些发现增进了我们对 ID神经影像学 magnetic resonance imaging neurofeedback for psychiatric illness: a
meta-analysis of brain and behavioral outcomes[J/OL]. Neurosci
的理解,并强调了 rtfMRI-NF 作为一种非侵入性、潜 Biobehav Rev, 2021, 121: 291-306 [2024-03-29]. https://pubmed.ncbi.
nlm.nih.gov/33370575/. DOI: 10.1016/j.neubiorev.2020.12.020.
在的治疗方法在提高 ID 患者睡眠质量方面的有效 [13] 李恺, 张驰, 童莉, 等 . 基于功能连接的失眠患者实时功能磁共振成
像神经反馈治疗的有效性预测[J]. 信息工程大学学报, 2023, 24(6):
性,为ID的治疗提供了新的视角和策略。 699-704. DOI: 10.3939/j.issn.1671-0673.2023.06.010.
作者利益冲突声明:全体作者均声明无利益冲突。 LI K, ZHANG C, TONG L, et al. Efficacy prediction of real-time
functional magnetic resonance imaging neurofeedback therapy for
作者贡献声明:李永丽设计本研究的方案,对稿 insomnia based on functional connectivity[J]. J Inf Eng Univ, 2023,
24(6): 699-704. DOI: 10.3939/j.issn.1671-0673.2023.06.010.
件重要内容进行了修改;谷宇昂起草和撰写稿件,获 [14] CAÑETE-MASSÉ C, CARBÓ -CARRETÉ M, PERÓ -CEBOLLERO
M, et al. Abnormal degree centrality and functional connectivity in
取、分析本研究的数据;张淼、贾淑蕾、孙永兵、祁菲、 Down syndrome: a resting-state fMRI study[J/OL]. Int J Clin Health
武肖玲、邹智、李中林、周菁、窦社伟、闫峰山获取、分 Psychol, 2023, 23(1): 100341 [2024-03-29]. https://pubmed.ncbi.nlm.
nih.gov/36262644/. DOI: 10.1016/j.ijchp.2022.100341.
析或解释本研究的数据,对稿件重要内容进行了修 [15] JIA F N, CHEN X, DU X D, et al. Aberrant degree centrality profiles
during rumination in major depressive disorder[J]. Hum Brain Mapp,
改;李永丽、武肖玲、邹智获得国家自然科学基金项 2023, 44(17): 6245-6257. DOI: 10.1002/hbm.26510.
[16] ZHANG J H, SCHOLTENS L H, WEI Y B, et al. Topography impacts
目资助;李永丽获得中原科技创新领军人才计划项 topology: anatomically central areas exhibit a "high-level connector"
目资助;李中林获得河南省科技攻关计划项目资助; profile in the human cortex[J]. Cereb Cortex, 2020, 30(3): 1357-1365.
DOI: 10.1093/cercor/bhz171.
李永丽、武肖玲、李中林、周菁、邹智获得河南省医学 [17] FENG S X, HUANG Y Y, LU H X, et al. Association between degree
centrality and neurocognitive impairments in patients with Schizophrenia: a
科技计划项目资助。全体作者都同意发表最后的修 Longitudinal rs-fMRI Study[J/OL]. J Psychiatr Res, 2024, 173: 115-123
[2024-03-29]. https://pubmed.ncbi.nlm.nih.gov/38520845/. DOI: 10.1016/
改稿,同意对本研究的所有方面负责,确保本研究的 j.jpsychires.2024.03.007.
准确性和诚信。 [18] SHAN A D, ZHANG H, GAO M X, et al. Aberrant voxel-based degree
centrality and functional connectivity in Parkinson's disease patients
with fatigue[J]. CNS Neurosci Ther, 2023, 29(9): 2680-2689. DOI:
10.1111/cns.14212.
参考文献[References] [19] XIONG J, YU C, SU T, et al. Altered brain network centrality in
patients with mild cognitive impairment: an fMRI study using a
[1] LIU T, WANG G Y, ZHANG X P, et al. B serum proteome profiles voxel-wise degree centrality approach[J]. Aging, 2021, 13(11):
revealed dysregulated proteins and mechanisms associated with 15491-15500. DOI: 10.18632/aging.203105.
insomnia patients: a preliminary study[J/OL]. Front Integr Neurosci, 2022,
16: 936955 [2024-03-29]. https://pubmed. ncbi. nlm. nih. gov/35958162/. [20] LUO B, QIU C, CHANG L, et al. Altered brain network centrality in
Parkinson's disease patients after deep brain stimulation: a functional MRI
DOI: 10.3389/fnint.2022.936955. study using a voxel-wise degree centrality approach[J]. J Neurosurg, 2023,
[2] CHUNG K F, YEUNG W F, HO F Y, et al. Cross-cultural and 138(6): 1712-1719. DOI: 10.3171/2022.9.JNS221640.
comparative epidemiology of insomnia: the Diagnostic and statistical [21] ZHANG S F, LI B, LIU K, et al. Abnormal voxel-based degree
manual (DSM), International classification of diseases (ICD) and centrality in patients with postpartum depression: a resting-state functional
International classification of sleep disorders (ICSD)[J]. Sleep Med, magnetic resonance imaging study[J/OL]. Front Neurosci, 2022, 16:
2015, 16(4): 477-482. DOI: 10.1016/j.sleep.2014.10.018. 914894 [2024-03-29]. https://pubmed.ncbi.nlm.nih.gov/35844214/. DOI:
[3] KHAN M S, AOUAD R. The effects of insomnia and sleep loss on 10.3389/fnins.2022.914894.
cardiovascular disease[J]. Sleep Med Clin, 2022, 17(2): 193-203. DOI: [22] LI J N, SHEETS P L. Spared nerve injury differentially alters
10.1016/j.jsmc.2022.02.008. parabrachial monosynaptic excitatory inputs to molecularly specific
[4] BATALLA-MARTÍN D, BELZUNEGUI-ERASO A, MIRALLES neurons in distinct subregions of the central amygdala[J]. Pain, 2020,
GARIJO E, et al. Insomnia in schizophrenia patients: prevalence and 161(1): 166-176. DOI: 10.1097/j.pain.0000000000001691.
quality of life[J/OL]. Int J Environ Res Public Health, 2020, 17(4): [23] 张淼, 武肖玲, 李中林, 等 . rtfMRI-NF技术调控杏仁核改善失眠障碍
1350 [2024-03-29]. https://pubmed.ncbi.nlm.nih.gov/32093111/. DOI: 的作用[J]. 磁共振成像, 2023, 14(7): 5-9. DOI: 10.12015/issn.1674-8034.
10.3390/ijerph17041350. 2023.07.002.
[5] 王琴, 熊妍希, 张自力, 等 . 阻塞性睡眠呼吸暂停低通气综合征的脑 ZHANG M, WU X L, LI Z L, et al. Regulation of amygdala by rtfMRI-NF
ReHo 和 fALFF 研 究 [J]. 磁 共 振 成 像 , 2023, 14(12): 98-102. DOI: technique in improving insomnia disorder[J]. Chin J Magn Reson Imag,
10.12015/issn.1674-8034.2023.12.016. 2023, 14(7): 5-9. DOI: 10.12015/issn.1674-8034.2023.07.002.
WANG Q, XIONG Y X, ZHANG Z L, et al. Study of ReHo and [24] SCHUFFELEN J, MAURER L F, LORENZ N, et al. The clinical effects of
fALFF in patients with obstructive sleep apnea hypopnea syndrome[J]. digital cognitive behavioral therapy for insomnia in a heterogenous study
Chin J Magn Reson Imag, 2023, 14(12): 98-102. DOI: 10.12015/ sample: results from a randomized controlled trial[J/OL]. Sleep, 2023,
issn.1674-8034.2023.12.016. 46(11): zsad184 [2024-03-29]. https://pubmed.ncbi.nlm.nih.gov/37428712/.
[6] ALBIKAWI Z F. Fear related to COVID-19, mental health issues, and DOI: 10.1093/sleep/zsad184.
predictors of insomnia among female nursing college students during [25] JONES D T, GRAFF-RADFORD J. Executive dysfunction and the
the pandemic[J/OL]. Healthcare, 2023, 11(2): 174 [2024-03-29]. https:// prefrontal cortex[J]. Continuum, 2021, 27(6): 1586-1601. DOI: 10.1212/
pubmed.ncbi.nlm.nih.gov/36673542/. DOI: 10.3390/healthcare11020174. CON.0000000000001009.
[7] PASQUINI S, CONTRI C, MERIGHI S, et al. Adenosine receptors in [26] MAYELI A, MISAKI M, ZOTEV V, et al. Self-regulation of
neuropsychiatric disorders: fine regulators of neurotransmission and ventromedial prefrontal cortex activation using real-time fMRI
potential therapeutic targets[J/OL]. Int J Mol Sci, 2022, 23(3): 1219 neurofeedback-Influence of default mode network[J]. Hum Brain
[2024-03-29]. https://pubmed.ncbi.nlm.nih.gov/35163142/. DOI: 10.3390/ Mapp, 2020, 41(2): 342-352. DOI: 10.1002/hbm.24805.
ijms23031219. [27] ISODA M. The role of the medial prefrontal cortex in moderating
[8] BAYLAN S, GRIFFITHS S, GRANT N, et al. Incidence and prevalence of neural representations of self and other in Primates[J/OL]. Annu Rev
post-stroke insomnia: a systematic review and meta-analysis[J/OL]. Sleep Neurosci, 2021, 44: 295-313 [2024-03-29]. https://pubmed. ncbi. nlm.
Med Rev, 2020, 49: 101222 [2024-03-29]. https://pubmed.ncbi.nlm.nih.gov/ nih.gov/33752448/. DOI: 10.1146/annurev-neuro-101420-011820.
31739180/. DOI: 10.1016/j.smrv.2019.101222. [28] KABOODVAND N, BÄCKMAN L, NYBERG L, et al. The
[9] HEUNIS S, LAMERICHS R, ZINGER S, et al. Quality and denoising retrosplenial cortex: a memory gateway between the cortical default
in real-time functional magnetic resonance imaging neurofeedback: a mode network and the medial temporal lobe[J]. Hum Brain Mapp,
methods review[J]. Hum Brain Mapp, 2020, 41(12): 3439-3467. DOI: 2018, 39(5): 2020-2034. DOI: 10.1002/hbm.23983.
10.1002/hbm.25010. [29] MÜLLER N C J, DRESLER M, JANZEN G, et al. Medial prefrontal
[10] THIBAULT R T, MACPHERSON A, LIFSHITZ M, et al. Neurofeedback decoupling from the default mode network benefits memory[J/OL].
with fMRI: a critical systematic review[J/OL]. Neuroimage, 2018, 172: Neuroimage, 2020, 210: 116543 [2024-03-29]. https://pubmed. ncbi.
786-807 [2024-03-29]. https://pubmed.ncbi.nlm.nih.gov/29288868/. DOI: nlm.nih.gov/31940475/. DOI: 10.1016/j.neuroimage.2020.116543.
10.1016/j.neuroimage.2017.12.071. [30] JIANG B H, HE D M, GUO Z W, et al. Effect-size seed-based d mapping
·68 · https://www.chinesemri.com