Consensus Definitions and Interpretation Templates for Dynamic Ultrasound Imaging of Defecatory Pelvic Floor Disorders: Proceedings of the Consensus Meeting of the Pelvic Floor Disorders Consortium of the American Society of Colon and Rectal Surgeons, the Society of Abdominal Radiology, the International Continence Society, the American Urogynecologic Society, the International Urogynecological Association, and the Society of Gynecologic Surgeons

医学 盆底 泌尿妇科 工作组 盆底疾病 人口 普通外科 家庭医学 医学物理学 尿失禁 外科 计算机网络 计算机科学 环境卫生
作者
Jonia Alshiek,Sthela M. Murad‐Regadas,Anders Mellgren,Phyllis Glanc,Gaurav Khatri,Lieschen H. Quiroz,Milena M. Weinstein,Ghazaleh Rostaminia,Lúcia Oliveira,Hina Arif‐Tiwari,Linda Ferrari,Liliana Bordeianou,S. Abbas Shobeiri
出处
期刊:Diseases of The Colon & Rectum [Lippincott Williams & Wilkins]
卷期号:66 (2): 200-216 被引量:8
标识
DOI:10.1097/dcr.0000000000002651
摘要

See "editorial" on page 169. The Pelvic Floor Disorders Consortium (PFDC) is a multidisciplinary organization of colorectal surgeons, urogynecologists, urologists, gynecologists, gastroenterologists, radiologists, physiotherapists, and other advanced care practitioners. Specialists from these fields are all dedicated to diagnosing and managing patients with pelvic floor conditions but approach evaluation and treatment of such patients with their unique perspectives given differences in their training. The PFDC was formed to enable collaboration between these specialties in developing and evaluating educational programs, creating clinical guidelines and algorithms, and promoting high-quality care for this unique patient population. The recommendations included in this document represent the work of the PFDC Working Group on Ultrasound in Imaging of Defecatory Disorders of the Pelvic Floor (members listed alphabetically in Table 1). The objective was to generate inclusive, rather than prescriptive, guidance for all practitioners interested in considering pelvic floor ultrasound imaging in their assessment of defecatory pelvic floor disorders. TABLE 1. - Members of the workgroup on the use of dynamic ultrasound in the evaluation of defecatory pelvic floor disorders Name and degree Affiliation City, state, country Amy Halverson, M.D. Department of Surgery, Northwestern Memorial Hospital and Feinberg School of Medicine Chicago, IL, USA Jonia Alshiek, M.D.1 Urogynecology Unit, Hillel Yaffe Medical Center, Technion Medical School Technion Medical School, Hadera, Israel Hina Arif-Tiwari, M.D. Department of Medical Imaging, College of Medicine, University of Arizona. Phoenix, AZ, USA Liliana Bordeianou, M.D. Section of Colorectal Surgery, Massachusetts General Hospital Pelvic Floor Disorders Center, Harvard Medical School Boston, MA, USA Shuqing Ding, Ph.D. Department of Surgery, Northwestern Health Sciences University Bloomington, MN, USA Andrea Ferrara, M.D. Department Colorectal Surgery, Colon & Rectal Surgery Clinic of Orlando Orlando, FL, USA Linda Ferrari, M.D. Pelvic floor unit. St. Thomas' Hospital London, UK Giuseppe Gagliardi, M.D. Department of Colorectal Surgery, University of Illinois Chicago, IL, USA Phyllis Glanc, M.D. Department of Medical Imaging, Sunnybrook Health Sciences Center Toronto, ON, Canada Gaurav Khatri, M.D. Department of Radiology, University of Texas Southwestern Medical Center Dallas, TX, USA S. Abbas Shobeiri, M.D. Department of Obstetrics and Gynecology, Inova Health System Fairfax, VA, USA Lieschen H. Quiroz Department of Obstetrics and Gynecology, The University of Oklahoma Health Sciences Center Oklahoma City, OK, USA Ari Steiner, M.D. Department of Radiology, South Nassau Community Hospital Oceanside, NY, USA David Sheyn, M.D. Department of OBGYN, University Hospitals Cleveland, OH, USA Joanne Favuzza, M.D. Department of Surgery, Boston Medical Center Boston, MA, USA Sergio Larach, M.D. Department of Surgery, Digestive and Liver Center of Florida Orlando, FL, USA Anders Mellgren, M.D. Department of Surgery, University of Illinois Chicago, IL, USA Yara Lima de Mendonca, M.D. Colorectal Surgery, Hospital Municipal Ronaldo Gazolla and University of Exeter Rio de Janeiro, Brazil, and Exeter, UK Miles Murphy, M.D. Division of Urogynecology, Department of OB–GYN, Abington—Jefferson Health Abington, PA, USA Sthela Murad-Regadas, M.D. Department of Surgery, School of Medicine of the Federal University of Ceará Fortaleza, Brazil Lucia Oliveira, M.D. Department of Anorectal Physiology, Policinica General do Rio de Janeiro Rio de Janeiro, Brazil Ghazaleh Rostaminia, M.D. Department of Obstetrics and Gynecology, Northshore Hospital Chicago, IL, USA Milena Weinstein, M.D. Department of Obstetrics and Gynecology, Massachusetts General Hospital Boston, MA, USA Steven Wexner, M.D. Department of Surgery, Cleveland Clinic Florida Weston, FL, USA STATEMENT OF THE PROBLEM Dynamic pelvic floor ultrasound (PFUS) has been shown to be an effective and relatively inexpensive method for evaluating pelvic organs, including the urethra, bladder, vagina, cervix and uterus, anal canal, rectum, and other pelvic floor structures, such as the levator ani muscles. PFUS can be performed using transperineal/introital, endovaginal, or endoanal/endorectal approaches. There is considerable evidence for the use of PFUS imaging to quantify pelvic floor disorders. Still, there is significant variation across disciplines regarding the degree of utilization of PFUS for such indications and the preferred choice of specific PFUS technique.1–4 Also, there is variability in the definitions of pathology described on PFUS between specialists, which results in more significant variability in how different physicians and specialties interpret and use findings seen on PFUS. These factors create challenges for health care providers in their efforts to counsel patients and effectively communicate and cooperate between specialities. Patients with pelvic floor disorders often have recurrent or multifactorial symptomatology, which may require care from multiple disciplines. Furthermore, many health care providers may be concurrently managing different aspects of pelvic floor dysfunction in the same patient in parallel. Lack of coordination and communication in imaging terminology can create misunderstandings and confusion for health care providers and patients. The American Institute of Ultrasound in Medicine and the International Urogynecologic Association generated a practice parameter guideline that made one of the first attempts at standardization of the language in the field of pelvic floor ultrasonography.5 However, the document had limited reference to defecatory pelvic floor disorders. Thus, this effort was undertaken with the explicit goal of inviting and including representatives from all relevant clinical specialties for whom PFUS holds clinical significance. This document aims to create a universal set of recommendations for a minimum common language for PFUS interpretation and reporting of defecatory pelvic floor disorders, with relevance across disciplines and all PFUS modalities. METHODOLOGY This document was developed by the Pelvic Floor Disorders Consortium (PFDC) Working Group on Ultrasound Imaging of Defecatory Disorders and created under the guidance of the American Society of Colon and Rectal Surgeons (ASCRS). The PFDC comprises clinicians with demonstrated expertise in the care and treatment of patients with pelvic floor conditions. The Working Group was created by enlisting PFDC volunteers. Invitation criteria included leadership in pelvic floor disorders with academic scholarship and a history of crossdisciplinary collaboration. Members of the working group participated in at least 2 group preliminary phone calls and researched an assigned topic. Each topic had at least 2 members assigned, always from different specialties. Each pair identified the literature on a relevant topic and performed a systematic review of the literature using a specified format. These systematic reviews involved an organized search of MEDLINE, PubMed, Embase, and the Cochrane Database of Collected Reviews performed up to April 1, 2019. Retrieved publications were limited to the English language, but no limits on the year of publication were applied. The search terms included "fecal incontinence," "urinary incontinence," "constipation," "lower urinary tract symptoms in men and women," and "pelvic floor disorders in men and women." The search strategies used "dynamic ultrasound," "pelvic organ prolapse," "obstructed defecation," "anal incontinence," "pelvic pain," "dyspareunia," "obstetric injury," "OASIS" (obstetric anal sphincter injuries), "anal sphincter injury," "pelvic floor ultrasound," "translabial ultrasound," "transperineal ultrasound," "endoanal ultrasound," "endorectal ultrasound," "transvaginal ultrasound," "echodefecography," "enterocele," "internal intussusception," "rectocele," "sigmoidocele," "perineal descent," "levator ani tears," "levator ani avulsion," "levator injury," "pelvic floor dysfunction," and "rectal prolapse" as primary search terms. Directed searches of the embedded references from the primary articles were also sometimes performed. Criteria for inclusion of references included articles that described original descriptions of relevant ultrasound measurements or clinically relevant literature describing the use of ultrasound imaging in clinical practice. The workgroup presented its preliminary research to the consortium at large for further discussion. Pelvic Floor Consortium Expert Meeting The Pelvic Floor Consortium Expert Meeting convened on June 2, 2019, in Cleveland, Ohio. It included 126 in-person (or online) participants from the United States, Europe, Asia, England, and Canada. These experts belonged to several subspecialties (colorectal surgery, gastroenterology, urogynecology, urology, physiotherapy, and radiology). They included members of numerous professional societies involved in the diagnosis and treatment of pelvic floor disorders. The event was also audited by formal representatives from the ASCRS, the Society of Abdominal Radiology (SAR), the American Urogynecologic Society, the International Urogynecological Association (IUGA), and the Society of Gynecologic Surgeons. The meeting was funded by the ASCRS. The participants at the expert consortium meeting analyzed the proposed sonographic techniques and definitions for each of the conditions reviewed in this statement, ultimately offering consensus recommendations for the technique and interpretation of PFUS as well as a standardized and clinically relevant synoptic reporting template. The group labeled this final template as the "Ultrasound Interpretation Template for the Initial Measurement of Patient-Reported Defecatory Pelvic Floor Complaints," or "Ultrasound-IMPACT" (see Supplement 1 at https://links.lww.com/DCR/C46). For a recommendation to make it into the Ultrasound-IMPACT template, expert consensus was required. Expert consensus was defined as >70% agreement among the voting participants. A subsequent committee meeting was then held to summarize these statements while keeping the expert consensus panel discussion directives in mind. In summary, this work is not meant to be an exhaustive description or pictorial essay of all disease processes found on PFUS imaging. Rather, this article sought to identify areas of consensus across disciplines so that a common language can be used to achieve the shared goal of caring for patients with defecatory pelvic floor disorders. Areas where consensus was not achieved remain potential topics for research to help further standardize best practices in the future and across all relevant disciplines. Final Review Once the document was finalized, the proposed recommendations were presented for review by the ASCRS Pelvic Floor Disorders Steering Committee. This Steering Committee is directed to develop clinical practice recommendations on colorectal pelvic floor disorders based on the best available evidence. The ASCRS Steering Committee edited the document and sent it to the ASCRS Executive Committee for final approval for publication. Similar reviews and endorsements were also given by the American Urogynecologic Society Publications Committee and Board of Directors, the SAR Board of Directors and SAR Disease Focused Panel on Pelvic Floor Dysfunction, the ICS Board of Directors, and the Executive Board of the Society of Gynecologic Surgeons. In addition, the document was reviewed by the IUGA Board of Directors. In accordance with the IUGA policy, the IUGA Board of Directors distributed the document for review by its entire membership and subsequently endorsed the document. Before submission of the document for publication, a rereview of the relevant literature was performed to include articles published between April 1, 2019, and March 1, 2021, and to assure that key new works pertaining to topics of defecatory pelvic floor disorders were also considered. RECOMMENDATIONS Overview of Techniques Many forms of dynamic ultrasound imaging exist, each with its advantages. Choice of the technique used may depend on the specific indication and the available expertise of the sonographer and interpreting physician (degree of consensus: 100%). Dynamic PFUS has 3 commonly used modalities: endoanal/endorectal (aPFUS), transperineal/introital (pPFUS), and endovaginal (vPFUS). Regardless of modality, these studies can be performed in a radiology department or an office setting, depending on the available level of sonographic expertise and appropriate equipment. Advantages of ultrasound evaluation include good patient tolerance, lack of radiation exposure, and the ability to decide on a case-by-case basis to perform ultrasound imaging as appropriate. It is essential to ensure that the imaging clinician, whether in-office or in the radiology department, has undergone specific training to provide quality imaging and interpretation of the examination.6 An appropriate transducer can be placed gently on the perineum or between the labia and the anus during ultrasound imaging. For the average patient, the examination is not painful. Following the acquisition of static images, a dynamic ultrasound video (cine loop) can be performed by instructing the patient to perform a strain/Valsalva maneuver and, in some cases, to attempt to empty ultrasound gel from the rectum to simulate defecation. Recommended ultrasound imaging protocols typically involve both dynamic 2-dimensional (2D) and 3-dimensional (3D) volume acquisitions using aPFUS (Fig. 1A), pPFUS (Figs. 1B and C), or vPFUS (Fig. 1D) techniques. Each modality conveys complementary information and may be used on the basis of the specific clinical indication. Physicians using ultrasound imaging may have various transducers and varying degrees of skill sets for different ultrasound assessment portions.FIGURE 1.: Examples of PFUS modalities. A, Endoanal/endorectal PFUS. The transducer is inserted in the anal canal to a depth of 5–6 cm. B, pPFUS using a 2D/3D curvilinear transducer. The probe tip is gently placed between the labia. C, pPFUS using an end-fire endocavitary probe. The transducer tip is gently placed between the labia and perineum. pPFUS also is commonly performed using a curved 3D probe placed along the labia. D, Endovaginal PFUS using a 2D/3D automatic transducer inserted 5–6 cm in the vagina to the level of the bladder-urethra junction. 2D = 2-dimensional; 3D = 3-dimensional; PFUS = pelvic floor ultrasound; pPFUS = transperineal/introital PFUS.For further discussion, the terminology we use when referencing these techniques is described in the following paragraphs. Dynamic aPFUS Traditionally, aPFUS is performed using an ultrasound scanner with a 7- to 10-MHz rotating transducer (focal range, 3–45 mm), providing a 360° axial view of the anal canal (Fig. 1A). The patient is usually scanned in either the left lateral or the dorsal lithotomy position depending on local preferences. Images are acquired at rest, during contraction of the pelvic floor muscles, and during a strain/Valsalva maneuver. For 2D imaging, the transducer is placed into the anal canal, and circumferential images of the top, middle, and distal anal canal are acquired. Characterization of the perineal body and the distance from the anal canal to the vagina is measured. For 3D volumetric imaging, the tip of the transducer is placed in the cephalad part of the anal canal. The transducer automatically acquires 3D volumetric data through the full length of the anal canal, which can be rendered into axial, sagittal, coronal, or additional oblique planes if needed for image analysis. After the transducer is inserted up to 6 cm above the anal verge, various additional maneuvers may be performed to evaluate the levator plate, the anal sphincter complex, and the surrounding structures. This dynamic variant of aPFUS (also sometimes called "echodefecography") involves insertion of ultrasound gel into the rectum after rectal cleansing with an enema. This is then followed by an evacuation maneuver, which further enhances the dynamic evaluation of the pelvic floor in defecatory dysfunction conditions.7 Dynamic pPFUS Traditionally, operators have performed transperineal ultrasound with a 2- to 6-MHz curved array transducer (Fig. 1B) or 6- to 9-MHz end-fire transducer (Fig. 1C) with 3D/4-dimensional capabilities to image the pelvic floor. Images are acquired at rest and during contraction and strain/Valsalva maneuvers. Sometimes a patient is asked to defecate ultrasound gel during the examination. Images are obtained by placing a covered transducer between the labia minora and the perineum, typically beginning in a midsagittal position.8 The imaging starts with assessing the pelvic floor hiatus in a 2D midsagittal plane of the pelvic floor structures, including, from anterior to posterior, the following structures: pubic symphysis, urethra, bladder, vagina, anorectum, and levator plate. The levator plate is defined as the echogenic tissue in the midline posterior to the anorectal junction. Visualization is easier if the bladder contains a small volume of urine, and the rectum may remain empty or can be gently filled with a small amount of gel.9,10 Synthetic graft components are visualized with various ultrasound techniques, and ultrasound imaging is considered one of the primary modalities for this purpose, in particular for those with a suburethral component such as midurethral slings. Following static images, cineloops are acquired at rest in the sagittal plane from right to left to include the obturator muscles. The key dynamic maneuver is acquired in the sagittal midline plane while the patient performs a sustained maximum pelvic floor strain/Valsalva maneuver. Many practitioners will add a pelvic floor contraction dynamic sequence to aid in determining which patients may benefit from pelvic floor physiotherapy. The dynamic strain/Valsalva technique is useful to visualize rectouterine pouch hernias, internal rectal intussusception, or rectoceles. 3D volume acquisitions enable multiplanar reformats in the coronal, axial, and sagittal planes, plus the rendered 3D view. The rendered 3D view and the axial multiplanar reformats are beneficial in determining the integrity of the levator ani muscles at their insertions and identifying levator ani avulsion. As the imaging quality of 3D systems improves, studies are progressively demonstrating a good correlation between aPFUS and pPFUS of the anal sphincter complex, particularly for OASIS, with sensitivity improving with expertise.11,12 The technique has become one of the more common pelvic floor imaging modalities because of its availability.13 Dynamic vPFUS A vPFUS is performed using a side-fire transducer that obtains either axial or radial images of the pelvic floor. If performed with the same transducer used for aPFUS (Fig. 1D), vPFUS should be performed before aPFUS to avoid the introduction of rectal contents into the vagina after aPFUS. In addition to static images, dynamic evaluation of the pelvic floor can be achieved by instructing the patient to contract the pelvic floor muscles and then perform strain/Valsalva maneuvers while capturing cineloops of the bladder, rectum, anorectal angle flattening, and levator plate movement. Although the vPFUS transducer supports the vaginal apex and may reduce posterior vaginal rectal and rectal may be pouch are visualized with these may be best with pPFUS because of the of that Once the dynamic images are the 3D volume may also be obtained to the integrity of levator ani vPFUS modality may also be used for between of the that may be particularly in after OF 1. Although all forms of ultrasound imaging in this document may visualize anal sphincter the in ultrasound imaging of anal sphincter integrity is the aPFUS technique (degree of consensus: is a common with a and on the quality of the anal sphincter may be when treatment for this Ultrasound imaging is a relatively inexpensive examination that additional information regarding sphincter integrity and forms of ultrasound imaging described above can visualize a anal sphincter complex, but aPFUS is considered the reference in evaluating anal sphincter (Fig. and identifying pPFUS and vPFUS with ultrasound transducers can also be useful in identifying sphincter for clinical but are and have the there has been a of publications demonstrating the of pPFUS for the assessment of the anal If there is the integrity of the anal sphincter or pathology by pPFUS or the findings to be further with aPFUS. a can identify the anal the anal the internal sphincter and anal the muscles, the and anal and the levator plate muscles and in the anal or the sphincter and anal findings have been with symptoms of both and anorectal As with all PFUS techniques, aPFUS is with a and are for technique and interpretation of the In the of aPFUS both pPFUS and vPFUS have good and can be used as a to identify sphincter with subsequent to as expertise and in pPFUS and some literature of these modalities to An for evaluation may be of in the of to Examples of anal sphincter in images of the anal canal as obtained during aPFUS. The the axial view obtained with the aPFUS transducer. The the right midsagittal view at the same The level of images in A is by the in The midsagittal are in panel A, or anal canal with B, canal with the part of and C, canal with the of where the is D, anal canal with and anal canal with aPFUS = endoanal/endorectal pelvic floor ultrasound; = = anal = internal anal = = levator = = = = = an anal sphincter is of the both a description of the degree of to the internal and anal sphincter and information the of the perineal body and the length of the in to the length of the entire anal sphincter (degree of consensus: anal sphincter is a common of after to of and can in at least a of after their first However, some of these findings may not have clinical in a of a of was of anal sphincter such as anorectal and anorectal can also in anal In a of anorectal subsequent of the and internal anal sphincter were identified in of PFUS is for the and of and for of These have a on aPFUS (Fig. usually as relatively in the and as relatively in the of the anal In are found more in the canal in the anterior in For the of sphincter 3D aPFUS has than 2D aPFUS for 3D for of canal anal sphincter as visualized on axial view. A, of the B, of the aPFUS = endoanal/endorectal pelvic floor ultrasound; = anal = internal anal in imaging include the of the muscles cephalad to the anal of an anterior sphincter a anal sphincter in a in the anal that the distal anal canal contains and and a perineal body may be a of anal sphincter The should the degree of between the and and the specific level at which this is should be made as to whether this is a of the and (see 1 at The of and the of the angle in degrees or of the and or full should also be In addition, 3D PFUS of and angle of sphincter in multiple imaging forms of PFUS can also provide this information when performed by and interpreting imaging of sphincter should also include a description of the levator ani with a of the of the levator hiatus (degree of consensus: and a description of the of levator ani (degree of consensus: of to the are common after vaginal and may be with pelvic organ The the and (Fig. The and muscles are seen by from have of that with defecatory symptoms have a rectum and more of the levator plate, of the of or the of Many with anal sphincter may have or and these may have following such as because levator dysfunction can be with during or Thus, a of to further patients may be clinically ani demonstrated axial view. A, The levator hiatus in the plane of The levator ani are on the left for B, image in may help is in this A = = = = = = = = pubic = = = vPFUS = endovaginal pelvic floor and the pelvic and for the pelvic A or in the is with the of the plane of minimum or of the of the The minimum distance between the pubic and the posterior of the anorectal at the level of the levator plate is the plane of minimum sometimes also to as levator hiatus (Fig. The plane of minimum is at the level of the at which the with posterior to the and the levator The levator plate the of the in the posterior midline at the level of the anorectal junction. and of the muscles. It is different from or of the from its at the pubic (Fig. which can to the and the of the pelvic evaluate the pelvic floor with as with other PFUS techniques, ultrasound imaging always starts with 2D dynamic pPFUS to
最长约 10秒,即可获得该文献文件

科研通智能强力驱动
Strongly Powered by AbleSci AI
科研通是完全免费的文献互助平台,具备全网最快的应助速度,最高的求助完成率。 对每一个文献求助,科研通都将尽心尽力,给求助人一个满意的交代。
实时播报
2秒前
2秒前
万能图书馆应助椰子采纳,获得10
2秒前
3秒前
星辰大海应助throb采纳,获得10
3秒前
4秒前
慕青应助666采纳,获得10
5秒前
Zoe发布了新的文献求助10
6秒前
6秒前
ljy完成签到,获得积分10
6秒前
jerremee发布了新的文献求助10
7秒前
7秒前
max完成签到 ,获得积分10
8秒前
superZ发布了新的文献求助10
8秒前
辛勤千愁发布了新的文献求助10
8秒前
丹丹完成签到 ,获得积分10
9秒前
zz完成签到,获得积分10
9秒前
9秒前
9秒前
万能图书馆应助爱笑的宛采纳,获得10
10秒前
10秒前
鲤鱼发布了新的文献求助10
10秒前
桐桐应助叶伟帮采纳,获得10
10秒前
11秒前
扫帚发布了新的文献求助10
11秒前
CipherSage应助叶伟帮采纳,获得10
11秒前
科研通AI6.4应助叶伟帮采纳,获得10
11秒前
11秒前
爆米花应助叶伟帮采纳,获得10
11秒前
wpz发布了新的文献求助10
11秒前
隐形曼青应助叶伟帮采纳,获得10
11秒前
lixm316应助javascript采纳,获得10
11秒前
在水一方应助叶伟帮采纳,获得10
12秒前
顾矜应助叶伟帮采纳,获得10
12秒前
一念发布了新的文献求助10
12秒前
ding应助叶伟帮采纳,获得10
12秒前
共享精神应助叶伟帮采纳,获得10
12秒前
香蕉觅云应助CTT采纳,获得10
12秒前
12秒前
传奇3应助科研通管家采纳,获得10
12秒前
高分求助中
(应助此贴封号)【重要!!请各用户(尤其是新用户)详细阅读】【科研通的精品贴汇总】 10000
The Multiple Self-States Drawing Technique 600
Organizational Behavior 510
Management and the Arts 510
Matrix Methods in Data Mining and Pattern Recognition Second Edition 510
Rosenblum, Global Change Biology 500
CLSI VET01S-2024 Performance Standards for Antimicrobial Disk and Dilution Susceptibility Tests for Bacteria Isolated From Animals (7th Ed) 500
热门求助领域 (近24小时)
化学 材料科学 医学 生物 纳米技术 计算机科学 化学工程 工程类 有机化学 物理 复合材料 生物化学 内科学 细胞生物学 基因 遗传学 免疫学 冶金 光电子学 癌症研究
热门帖子
关注 科研通微信公众号,转发送积分 7770433
求助须知:如何正确求助?哪些是违规求助? 9313339
关于积分的说明 20333369
捐赠科研通 7355628
什么是DOI,文献DOI怎么找? 3316359
关于科研通互助平台的介绍 2465106
邀请新用户注册赠送积分活动 2331204