Literature DB >> 30249227

Cyclic bisphosphonate therapy reduces pain and improves physical functioning in children with osteogenesis imperfecta.

Melissa D Garganta1, Sarah S Jaser2, Margot A Lazow3, Jonathan G Schoenecker2, Erin Cobry2, Stephen R Hays2, Jill H Simmons4,5.   

Abstract

BACKGROUND: Children with osteogenesis imperfecta (OI) experience pain and impaired physical functioning. The longitudinal effect of cyclic bisphosphonate treatment on these symptoms has not been described. We serially evaluated pain and functioning in pediatric patients with OI treated with intravenous bisphosphonate therapy.
METHODS: Pain and physical functioning were assessed at multiple time-points over two infusion cycles in 22 OI patients (median age 10 years [range 2-21 years]; 8 girls) receiving cyclic intravenous bisphosphonate therapy. Pain was assessed using the FACES® visual analogue scale; physical functioning, including self-care, was assessed using the PedsQL™ Generic Core inventory.
RESULTS: Pain scores decreased significantly immediately following infusion and remained reduced at 4 weeks post-infusion, increasing before and decreasing again after subsequent infusion (F = 25.00, p < 0.001). Physical functioning scaled scores improved 4 weeks after infusion and declined before subsequent infusion across patients (F = 10.87, p = 0.007). Exploratory analyses indicated significantly different effects between mild and moderate-severe OI types for pain, but not for physical functioning. No fractures occurred during the study.
CONCLUSION: In children with OI, cyclic intravenous bisphosphonate therapy transiently reduces pain and improves functional abilities. Pain relief occurs immediately following infusion with functional improvements observed 4 weeks later. Both pain and physical functioning return to pretreatment levels by the subsequent infusion.

Entities:  

Keywords:  Bisphosphonate; Faces®; Osteogenesis imperfecta; Pain; Pamidronate; Pediatrics; PedsQL™; Quality of life; Zoledronic acid

Mesh:

Substances:

Year:  2018        PMID: 30249227      PMCID: PMC6154399          DOI: 10.1186/s12891-018-2252-y

Source DB:  PubMed          Journal:  BMC Musculoskelet Disord        ISSN: 1471-2474            Impact factor:   2.362


Background

Osteogenesis imperfecta (OI) is a genetic disorder that affects type 1 collagen and has variable manifestations including low bone mineral density, skeletal deformities, recurrent bone fractures, scoliosis, and chronic pain [1-3]. The majority of patients with OI have a mutation in the COL1A1 or COL1A2 gene encoding the alpha 1 and alpha 2 chains of type 1 collagen, producing either defective type 1 collagen or a deficient quantity of normal type 1 collagen; more than 200 mutations in multiple genes have been identified [4, 5]. The widely accepted Sillence classification distinguishes the four most common phenotypic presentations (Types I-IV) (Table 1), although up to 17 types have been described based upon either unique phenotype or molecular etiology [6-8]. Regardless of type, many patients with OI report pain on a chronic basis, even during periods without fractures [4, 9]. The specific etiology of the pain that occurs in patients with OI in the absence of an acute fracture is not entirely clear; however, it has been hypothesized that inflammatory cytokines, such as prostaglandins or thromboxanes, may contribute to bone turnover and therefore result in pain symptoms [10]. Chronic pain may result in delayed motor development, missed school days and significant psychosocial stress for patients and their families [11, 12]. Furthermore, children with OI experience reduced physical functioning, such as poor mobility and inability to perform routine activities of daily living [2, 13].
Table 1

Sillence classification system for osteogenesis imperfecta

OI TypeFeatures
Type IMildest form. Limited bone deformity and fragility.
Type IILethal in perinatal period.
Type IIIMost severe form in patients who survive the newborn period.
Type IVModerate severity. Spectrum of severity between types I and III.
Additional OI typesRange in severity. Etiology is typically due to mutations in genes involved with collagen formation other than COL1A1 or COL1A2.
Sillence classification system for osteogenesis imperfecta The current mainstay of pharmacologic treatment for OI is nitrogen-containing bisphosphonate therapy, which has been shown to decrease bone turnover, improve bone mineral density and reduce fracture rates [14, 15]. Bisphosphonate therapy is typically initiated when children with OI have two fragility fractures per year. Although dosing schedules vary between institutions, pamidronate is typically given every 2 months until age 2 years, every 3 months in the third year of life, and every 4 months thereafter; zoledronic acid is generally given every 6 months. The choice of bisphosphonate administered is typically dependent upon provider and patient comfort [16]. It has previously been reported that bisphosphonate therapy relieves bone pain acutely following infusion in children with OI, but a sustained long-term effect, if any, is unclear [2, 3, 14, 17–19]. A recent study reported decreased pain at 1 week post-infusion with zoledronate compared to pre-infusion [20]. Previous studies have demonstrated that cyclic bisphosphonate treatment with pamidronate may improve mobility and muscle force in children with moderate to severe types of OI and may reduce the number of days per week with pain [8], but the effect on severity of pain between infusion cycles has not been well- assessed. Some studies have reported improvement in mobility and independence of activities following bisphosphonate treatment, whereas others have not demonstrated any beneficial effects on physical functioning [2, 3, 13, 21]. Therefore, we assessed the effect of cyclic intravenous bisphosphonate treatment on patient-reported pain levels and parent-assessed physical functioning over time and compared effects between children with mild and moderate-to-severe forms of OI.

Methods

Patient population and study design

The sample in this prospective longitudinal cohort study consisted of 22 children with a diagnosis of OI receiving intravenous bisphosphonate therapy at the Monroe Carell Jr. Children’s Hospital at Vanderbilt between November 2014 and February 2016. Patients that had experienced at least 2 fragility fractures within the 12 months prior to starting therapy were included and patients naïve to bisphosphonate treatment were excluded. All patients approached agreed to be enrolled. OI Type (Type I, Type III or Type IV) was defined clinically, and one patient had genetic testing consistent with OI Type VIII. Patients were followed under real-world conditions through two cycles of bisphosphonate treatment with pain assessed by patient report immediately before and after each infusion and 4 weeks following the initial infusion. Physical functioning was assessed immediately before each infusion and 4 weeks after the first infusion by a parent-completed survey. This study was approved by the Institutional Review Board at Vanderbilt University Medical Center. The authors have no conflicts of interest to disclose.

Treatments

Patients received either pamidronate or zoledronic acid per their chronic regimen. Pamidronate was administered in a single-day infusion dosed in a weight- and age-dependent manner. Children ages 2–3 years received 1.1 mg/kg every 3 months and those > 3 years received 1.5 mg/kg/dose every 4 months (maximum dose ≤45 mg/infusion and 4.5 mg/kg/year). Zoledronic acid was administered in a single-day infusion of 0.05 mg/kg every 6 months for all ages. The treatment regimen was selected prior to study participation by patients and families after discussion about long-term knowledge of the effects of pamidronate compared with ease of administration of zoledronic acid.

Assessments

Pain was evaluated using the FACES® visual analogue scale, a validated tool for assessing patient-perceived pain on a scale of 0–10 with 0 indicating no pain and 10 indicating worst possible pain [22]. The specific location of pain was not recorded. Physical functioning was assessed using the Pediatric Quality of Life Inventory 4.0 Generic Core Scales for Physical Functioning (PedsQL™) Parent Reports for Young Children ages 5–7, Children ages 8–12 and Teens ages 13–17 years. The PedsQL™ is a health-related quality of life measure that has demonstrated validity and reliability in a wide variety of general populations and in several disease-specific pediatric populations [23-25]. The Physical Functioning Core Scale consists of eight items related to daily activities specific to age group (e.g., walking, running, bathing, lifting items, energy level). Physical Functioning Core Scale score is calculated as a scaled score ranging from 0 to 100, with 100 indicating the highest level of health-related quality of life and physical functioning [25].

Statistical analyses

Descriptive analyses were conducted to determine the means and standard deviations of the measures at each time point. To assess changes in pain and physical functioning over time (within subjects), we conducted repeated measures analysis of variance. The repeated measures design provides greater statistical power to detect effects with a smaller number of patients by controlling for individual differences. We also conducted exploratory analyses to determine whether there were differences in changes in pain across OI types (Type I vs. Types III and IV). Analyses were performed using IBM SPSS software, version 23 (SPSS, Chicago, IL).

Results

Clinical characteristics of the 22 children analyzed in this study are presented in Table 2. Patients were 2–21 years old (median age 10 years); 36% had mild OI (Type I, N = 8) while 64% had moderate-severe OI (Type III, N = 7; Type IV, N = 6; Type VIII, N = 1), as defined by clinical characteristics (Sillence classification (Table 1)), except for the patient with Type VIII, who was classified based upon genetic testing (moderate-severe). Not all patients were able to complete all study visits, though this was never due to patient/parent refusal. As these patients were not seen under specific study conditions, but rather were followed at their regularly scheduled appointments, some patients missed study windows due to cancellations, rescheduling or no- shows to their appointments, or research staff being unavailable during their appointment times. The median time between Visit 1 (initial infusion during study) and Visit 2 (per protocol, 4 weeks post infusion) was 30.5 days. The median time between Visit 1 (initial infusion during study) and Visit 3 (2nd infusion) was 206 days (6.9 months). Overall, 73% (N = 16) of patients were treated with pamidronate, while 27% (N = 6) were treated with zoledronic acid. There were no significant differences between patients treated with pamidronate and zolendronic with respect to child age, sex, or OI Type. No fractures occurred during the study.
Table 2

Clinical characteristics of the study population

CharacteristicN = 22
Age (years) a10 (2–21)
Male/Female14/8 (64%/36%)
White14 (64%)
Black4 (18%)
Asian2 (9%)
Latino1 (5%)
Multiracial1 (5%)
OI Type I8 (36%)
OI Type III7 (32%)
OI Type IV6 (27%)
OI Type VIII1 (5%)
Height z-score a− 2.96 (− 12.43–4.16)
Weight z-score a− 1.64 (− 11.89–3.29)
BMI z-score a0.81 (− 0.95–2.51)
Able to ambulate without assistance14/21 (67%)
Receiving pamidronate16 (73%)
Receiving zoledronic acid6 (27%)

a Median (range)

Clinical characteristics of the study population a Median (range)

Pain

Eighteen patients completed the pre- and immediately post- infusion pain assessments, 12 patients completed the 4-week post-infusion assessment, and eight patients completed the subsequent pre-infusion pain assessment. One patient sustained acute trauma by falling from a chair during his infusion and his pain scores were excluded. For patients who had data for all time points (n = 6), there was a significant change in self-reported pain scores over time associated with bisphosphonate infusion (F = 10.19, P < 0.001) (Fig. 1). Pain scores decreased from 2.00 ± 2.00 immediately pre-infusion to 0.50 ± 0.84 immediately post-infusion. Pain scores remained decreased from baseline at 4 weeks post-infusion, with a mean score of 0.67 ± 0.82. A diminished analgesia was observed with pain scores returning to pre-infusion levels (2.50 ± 2.43) immediately prior to subsequent infusion, approximately 6 months later. Significant analgesia was again noted immediately following subsequent infusion (pain scores 1.00 ± 1.27). For the 12 patients who had pain assessments only at the first pre- and post- infusion and 4-week follow-up visit, there was a significant change in self-reported pain scores from the first infusion to the follow-up visit, about 4 weeks later (F = 25.00, P < .001). Pain scores decreased from 2.17 ± 1.53 prior to infusion to 0.42 ± 0.79 post-infusion and remained decreased from baseline at 4 weeks post-infusion, with a mean score of 0.50 ± 0.67. It is notable that there was a significant difference between pre-infusion pain scores at the first visit and follow-up visit (t = −.2.65, P = 0.033).
Fig. 1

Mean pain scores over time by osteogenesis imperfecta (OI) type, assessed by FACES® visual analogue scale immediately pre- / immediately post-infusion, 4 weeks post-infusion, and immediately pre- / immediately post subsequent infusion. Scale reduced (maximum pain score 5) for visual effect. * P < 0.001 for effect over time in all patients. ** P = 0.023 for difference in pain over time between patients with milder (Type I) and more severe (Types III/IV) OI

Mean pain scores over time by osteogenesis imperfecta (OI) type, assessed by FACES® visual analogue scale immediately pre- / immediately post-infusion, 4 weeks post-infusion, and immediately pre- / immediately post subsequent infusion. Scale reduced (maximum pain score 5) for visual effect. * P < 0.001 for effect over time in all patients. ** P = 0.023 for difference in pain over time between patients with milder (Type I) and more severe (Types III/IV) OI Exploratory subgroup analysis indicated that the effect of bisphosphonate infusion on pain scores differed according to type of OI (Fig. 1). We identified a significant Time x OI Type interaction effect for pain (F = 3.82, P = 0.023): children with more severe forms of OI (Types III/IV, n = 3) reported significantly higher levels of pain at baseline, and a greater decrease in pain following bisphosphonate infusion, than children with milder OI (Type I, n = 3). In patients with Types III/ IV OI, mean pain scores decreased from 3.33 ± 2.08 pre-infusion to 1.00 ± 1.00 post-infusion, and remained decreased at 1.33 ± 0.58 4 weeks post-infusion. In patients with Type I OI, mean pain scores decreased from 0.67 ± 0.58 pre-infusion to 0.00 ± 0.00 post-infusion, and remained decreased at 0.00 ± 0.00 4 weeks post- infusion. A similar pattern was seen with the second infusion cycle. Children with more severe OI (Types III/IV) reported mean pain scores of 4.33 ± 2.08 prior to infusion, decreasing to 2.00 ± 1.00 immediately after the second infusion; children with milder OI (Type I) reported mean pain scores of 0.67 ± 0.58 pre-infusion, decreasing to 0.00 ± 0.00 immediately after infusion. These results must be interpreted with caution and are therefore considered exploratory; given the observed effect size and our sample of six participants measured across five time points, we had power of .24 to detect a significant effect. A sample size of 16 (8 per group) was needed to have sufficient power to detect significant effects.

Physical functioning

Parents of all 22 patients completed the pre-infusion physical functioning assessment, 12 parents completed the 4-week post-infusion assessment, and seven parents completed the subsequent pre-infusion physical functioning assessment. For the patients who had data for only the first two visits (n = 12, Fig. 2a), we observed significant change from the first visit to the post-visit assessment in parent-reported physical functioning scaled scores associated with bisphosphonate infusion (F = 10.87, P = .007). Mean scaled score for physical functioning was 49.48 ± 25.49 before infusion, and increased to 57.03 ± 25.29 4 weeks after infusion.
Fig. 2

a Mean physical functioning scaled scores over time, assessed using the PedsQL™ Generic Core Scale for Physical Functioning pre-infusion and 4 weeks post-infusion (n = 12). * P = 0.007.b Mean physical functioning scaled scores over time, assessed using the PedsQL™ Generic Core Scale for Physical Functioning pre-infusion, 4 weeks post-infusion, and pre-subsequent infusion (n = 5). * P = 0.008. Scale reduced (minimum scaled score 40) for visual effect

a Mean physical functioning scaled scores over time, assessed using the PedsQL™ Generic Core Scale for Physical Functioning pre-infusion and 4 weeks post-infusion (n = 12). * P = 0.007.b Mean physical functioning scaled scores over time, assessed using the PedsQL™ Generic Core Scale for Physical Functioning pre-infusion, 4 weeks post-infusion, and pre-subsequent infusion (n = 5). * P = 0.008. Scale reduced (minimum scaled score 40) for visual effect For the patients who had data from all time points (n = 5, Fig. 2b), we observed a significant change in parent-reported physical functioning scaled scores. This effect was quadratic (F = 24.61, P = .008), such that physical functioning improved after the first infusion, and diminished to pre-infusion levels by Visit 3. Specifically, mean scaled score for physical functioning was 46.25 ± 31.59 before infusion, increased to 53.75 ± 29.60 4weeks after infusion, and returned to 46.88 ± 28.13 by the second infusion cycle. We were not able to evaluate differences in physical function between OI types due to small sample size.

Discussion

We demonstrate that treatment with cyclic bisphosphonate infusions in a real-world setting reduces pain and improves reported physical functioning in children with both mild and moderate-severe OI. Patients experience pain relief immediately following infusion, with sustained analgesia for several weeks. This effect eventually wanes over time, with pain returning at least to pre-infusion baseline prior to the next infusion. The children in the current study also experience a similar improvement in parental reports of physical functioning, including the ability to participate in exercise, play, household chores and self-care activities, such as bathing, following infusions, but these gains appeared to decrease back to baseline prior to the next cycle. Our findings are consistent with the results of previous studies investigating the short-term effect of bisphosphonate infusions on pain relief in children with OI, in which consecutive three-day infusions reduced the number of days with pain per week in the weeks following the infusion, with recurrence of pain preceding the next treatment cycle [14, 17]. A recent study which evaluated pain in patients who were administered zoledronic acid in the hospital setting similarly showed reduction in both pain scores and number of pain quality descriptors measured following infusions, but neither were statistically significant [20]. Similar to our findings, these aforementioned studies also demonstrated improvements in physical functioning, notably mobility and ambulation, following bisphosphonate infusions, with decline in functioning prior at the time of the subsequent infusion [14, 17, 20]. However, these studies were not performed in patients receiving outpatient single-day infusions of bisphosphonate therapy [26]. Our results indicate that reduced pain and improved physical functioning can be achieved using single-day outpatient treatment, which is less cumbersome for patients and families than the traditional consecutive three-day infusion cycle. Other potential areas of investigation include determining if these effects on pain and functioning can be achieved with oral bisphosphonate therapy. The results of the current study contribute to growing evidence supporting temporary gains in pain relief and physical functioning following bisphosphonate infusions, but it remains unclear if and how these improvements after bisphosphonate use can be sustained long-term. Prior studies did not demonstrate significant long-term improvements in pain, mobility, or functioning at time points of 12 months or more following administration of bisphosphonates [2, 3, 18, 19], though two of these trials utilized different bisphosphonate types (risedronate and alendronate) than the ones administered in this study. Further research investigating the optimal bisphosphonate cycle duration and type as well as supplementary therapies to ensure sustained pain and functional improvements is therefore needed. As expected, children with more severe forms of OI have more pain at baseline than children with milder forms of OI. While exploratory, our findings suggest that more severely affected OI patients have greater improvement in pain scores after infusions, while patients with milder OI experience less dramatic pain relief. Why patients with more severe forms of OI should obtain greater pain relief following bisphosphonate infusion than patients with milder OI is unclear. Additionally, the mechanism through which bisphosphonate treatment provides pain relief is unclear. Previous studies have suggested that decreased rates of fracture and bone turnover may provide relief from pain, but this does not explain the significant analgesia reported immediately following a single-day infusion as demonstrated in this study. Reduction of inflammatory cytokines such as serum prostaglandins or thromboxanes may play a role, as suggested by previous studies [10]. Future studies should include objective laboratory data such as measurement of the inflammatory cytokine prostaglandin E2, which has been implicated as a potent contributor to bone remodeling [10, 27], correlated with subjective measures of pain and functioning. In the current cohort, patients with mild OI had experienced fractures prior to initiation of treatment with bisphosphonate therapy, as fragility fractures are typically considered a requirement for treatment. Further studies are needed to examine the effect of bisphosphonate therapy on pain, physical functioning and quality of life in patients with mild forms of OI who do not have fragility fractures. Limitations of this study include small sample size and lack of either a placebo-controlled or non-treatment control group. The small sample size provided insufficient statistical power to evaluate for racial or gender differences in pain and functioning, or to determine differences between the two bisphosphonates used in this cohort. Patients were on chronic bisphosphonate therapy, so we were unable to evaluate the effect of first bisphosphonate infusion, as patients undergoing their first bisphosphonate infusion were excluded due to the flu-like reaction that often occurs in this setting. It would be appropriate in other investigations to evaluate effects on pain and physical functioning of first bisphosphonate infusion after this flu-like reaction has resolved. Additionally, the patient sample size was too small to determine whether there is a cumulative effect of bisphosphonate therapy on pain and physical functioning. The time between infusions was a mean of 6 months, making it difficult to determine exactly when the pain began to increase again following the initial infusion. In addition, while the timing between infusions varies depending on the type of bisphosphonate administered (zoledronate vs pamidronate), the current study did not have a large enough population to evaluate whether there was a significant difference in pain relief or improved functioning between these two groups. However, understanding both the exact time at which pain starts to worsen as well as whether analgesia is impacted by bisphosphonate type could be important in determining the duration and type of therapy which maximally reduces pain and improves physical functioning in these patients. Additionally, the exact locations of pain were not assessed, but would be useful to identify in future studies, in order to more specifically evaluate the impact of bisphosphonates. Physical functioning was not assessed by medical provider evaluation, but by parental survey. The PedsQL™ is an inventory not approved specifically for OI, but has been used in other chronic pediatric disease-specific populations [28, 29]. The FACES® scale used to evaluate pain is not specific for a population with OI; unfortunately, there is no pain assessment available specifically for children and adolescents with OI [30].

Conclusions

Our data indicate that chronic cyclic treatment with single-day bisphosphonate infusions acutely reduces pain and improves parental reports of daily functioning, including ability to participate in self-care, in children with OI regardless of type. Effects on pain appear to differ according to type of OI. Pain relief occurs immediately following infusion with functional improvements observed 4 weeks later. Both pain and physical functioning return to pretreatment levels by the subsequent infusion.
  30 in total

1.  Fracture and non-fracture pain in children with osteogenesis imperfecta.

Authors:  Philip Zack; Linda Franck; Catherine Devile; Christine Clark
Journal:  Acta Paediatr       Date:  2005-09       Impact factor: 2.299

2.  Recessive osteogenesis imperfecta caused by missense mutations in SPARC.

Authors:  Roberto Mendoza-Londono; Somayyeh Fahiminiya; Jacek Majewski; Martine Tétreault; Javad Nadaf; Peter Kannu; Etienne Sochett; Andrew Howard; Jennifer Stimec; Lucie Dupuis; Paul Roschger; Klaus Klaushofer; Telma Palomo; Jean Ouellet; Hadil Al-Jallad; John S Mort; Pierre Moffatt; Sergei Boudko; Hans-Peter Bächinger; Frank Rauch
Journal:  Am J Hum Genet       Date:  2015-05-28       Impact factor: 11.025

3.  Alendronate for the treatment of pediatric osteogenesis imperfecta: a randomized placebo-controlled study.

Authors:  L M Ward; F Rauch; M P Whyte; J D'Astous; P E Gates; D Grogan; E L Lester; R E McCall; T A Pressly; J O Sanders; P A Smith; R D Steiner; E Sullivan; G Tyerman; D L Smith-Wright; N Verbruggen; N Heyden; A Lombardi; F H Glorieux
Journal:  J Clin Endocrinol Metab       Date:  2010-11-24       Impact factor: 5.958

4.  Increasing ankle strength to improve gait and function in children with cerebral palsy: a pilot study.

Authors:  Jack R Engsberg; Sandy A Ross; David R Collins
Journal:  Pediatr Phys Ther       Date:  2006       Impact factor: 3.049

5.  Benefits of pamidronate in children with osteogenesis imperfecta: an open prospective study.

Authors:  Véronique Forin; Asma Arabi; Vincent Guigonis; Georges Filipe; Albert Bensman; Christian Roux
Journal:  Joint Bone Spine       Date:  2004-12-15       Impact factor: 4.929

6.  High levels of serum prostaglandin E2 in children with osteogenesis imperfecta are reduced by neridronate treatment.

Authors:  Patrizia D'Eufemia; Roberto Finocchiaro; Mauro Celli; Anna Zambrano; Martina Tetti; Ciro Villani; Pietro Persiani; Emanuela Mari; Alessandra Zicari
Journal:  Pediatr Res       Date:  2008-02       Impact factor: 3.756

Review 7.  Psychosocial aspects of osteogenesis imperfecta: an update.

Authors:  D E Cole
Journal:  Am J Med Genet       Date:  1993-01-15

8.  The PedsQL 4.0 as a pediatric population health measure: feasibility, reliability, and validity.

Authors:  James W Varni; Tasha M Burwinkle; Michael Seid; Douglas Skarr
Journal:  Ambul Pediatr       Date:  2003 Nov-Dec

9.  Risedronate in the treatment of mild pediatric osteogenesis imperfecta: a randomized placebo-controlled study.

Authors:  Frank Rauch; Craig F Munns; Christof Land; Moira Cheung; Francis H Glorieux
Journal:  J Bone Miner Res       Date:  2009-07       Impact factor: 6.741

10.  The severity of chronic pediatric pain: an epidemiological study.

Authors:  Anna Huguet; Jordi Miró
Journal:  J Pain       Date:  2007-12-21       Impact factor: 5.820

View more
  15 in total

Review 1.  Osteogenesis imperfecta: advancements in genetics and treatment.

Authors:  Vittoria Rossi; Brendan Lee; Ronit Marom
Journal:  Curr Opin Pediatr       Date:  2019-12       Impact factor: 2.856

2.  Effect of Bisphosphonates on Function and Mobility Among Children With Osteogenesis Imperfecta: A Systematic Review.

Authors:  Christopher S Constantino; Joseph J Krzak; Alissa V Fial; Karen M Kruger; Jacob R Rammer; Katarina Radmanovic; Peter A Smith; Gerald F Harris
Journal:  JBMR Plus       Date:  2019-10-18

3.  [Osteogenesis imperfecta : A multidisciplinary challenge].

Authors:  Gabriel T Mindler; Rudolf Ganger; Alexandra Stauffer; Peter Marhofer; Adalbert Raimann
Journal:  Orthopadie (Heidelb)       Date:  2022-05-25

Review 4.  Pain Phenotypes in Rare Musculoskeletal and Neuromuscular Diseases.

Authors:  Anthony Tucker-Bartley; Jordan Lemme; Andrea Gomez-Morad; Nehal Shah; Miranda Veliu; Frank Birklein; Claudia Storz; Seward Rutkove; David Kronn; Alison M Boyce; Eduard Kraft; Jaymin Upadhyay
Journal:  Neurosci Biobehav Rev       Date:  2021-02-10       Impact factor: 9.052

5.  Bisphosphonate use in the horse: what is good and what is not?

Authors:  Alexis Mitchell; Ashlee E Watts; Frank H Ebetino; Larry J Suva
Journal:  BMC Vet Res       Date:  2019-06-24       Impact factor: 2.792

6.  Anti-Tumor Effects of Low Dose Zoledronate on Lung Cancer-Induced Spine Metastasis.

Authors:  Elie Akoury; Ana Sofia Ramirez Garcia Luna; Pouyan Ahangar; Xiaoya Gao; Pylyp Zolotarov; Michael H Weber; Derek H Rosenzweig
Journal:  J Clin Med       Date:  2019-08-14       Impact factor: 4.241

7.  Reiterative infusions of MSCs improve pediatric osteogenesis imperfecta eliciting a pro-osteogenic paracrine response: TERCELOI clinical trial.

Authors:  Arantza Infante; Blanca Gener; Miguel Vázquez; Nerea Olivares; Arantza Arrieta; Gema Grau; Isabel Llano; Luis Madero; Ana Maria Bueno; Belén Sagastizabal; Daniela Gerovska; Marcos J Araúzo-Bravo; Itziar Astigarraga; Clara I Rodríguez
Journal:  Clin Transl Med       Date:  2021-01

8.  Osteogenesis Imperfecta in neonatal period in Cameroon: A case report.

Authors:  Ritha Carole Mbono Betoko; Suzanne Ngo Um Sap; Marie-Ange Ngo Yamben; Jocelyn Tony Nengom; Paul Koki Ndombo
Journal:  Clin Case Rep       Date:  2020-11-20

9.  Functional outcomes of an adult with osteogenesis imperfecta after rehabilitation post bilateral Girdlestone procedure.

Authors:  Isabella Supnet; Joycie Eulah Abiera; Maria Melanie Liberty Alcausin; Carlo Emmanuel Sumpaico
Journal:  BMJ Case Rep       Date:  2021-04-05

10.  Outcome of COVID19 in Patients With Osteogenesis Imperfecta: A Retrospective Multicenter Study in Saudi Arabia.

Authors:  Abeer N Alshukairi; Hazem Doar; Afaf Al-Sagheir; Mona A Bahasan; Anas A Sultan; Mohammad K Al Hroub; Dina Itani; Imran Khalid; Mohammed F Saeedi; Sarah Bakhamis; Laila Layqah; Afnan A Almutairi; Mona Saifullah; Lama Hefni; Awad Al-Omari; Basem M Alraddadi; Salim A Baharoon
Journal:  Front Endocrinol (Lausanne)       Date:  2022-01-13       Impact factor: 5.555

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.