1http://dx.doi.org/10.20396/bjos.v21i00.8665232 Volume 21 2022 e225232 Original Article 1 Department of Restorative Dentistry, Piracicaba Dental School, University of Campinas; Piracicaba, São Paulo, Brazil. 2 Department of Dentitry, Paulista University, São Paulo, SP, Brazil. Corresponding author: Walbert de Andrade Vieira Department of Restorative Dentistry, Endodontics Division State University of Campinas, Piracicaba Dental School Av. Limeira, 901, Areião – Endodontics Division CEP: 13414018, Piracicaba, SP – Brasil walbert.vieira18@gmail.com Editor: Dr Altair A. Del Bel Cury Received: April 06, 2021 Accepted: July 19, 2021 Spectrophotometric analysis of internal bleaching of traumatized teeth with coronal discoloration following regenerative endodontic procedures Jaqueline Lazzari1 , Walbert Vieira1,* , Vanessa Pecorari2 , Brenda Paula Figueiredo de Almeida Gomes1 , José Flávio Affonso de Almeida1 , Adriana de-Jesus-Soares1 Aim: The objective of this study was to describe a case series concerning internal bleaching of anterior traumatized teeth that underwent regenerative endodontic procedures (REP). Methods: Seven non-vital maxillary anterior teeth discolored after regenerative endodontic procedures were included and divided into two groups according to the medication protocol used in the REP: (1) Triple antibiotic paste (TAP) group (n=4); (2) Calcium hydroxide and 2% chlorhexidine gel (HC+CHX) (n=3). The bleaching technique used was walking bleach, where sodium perborate associated with distilled water was used. Bleaching agent was replaced weekly until the darkened tooth was slightly lighter than the adjacent tooth. The color was recorded with the aid of a digital spectrophotometer in two moments (T1: prior the first session of bleaching, T2: fourteen days after the last session of bleaching). The change in color after the procedure (ΔE) was calculated and reported in a descriptive analysis. Results: The ΔE for all teeth showed color differences exceeding the perceptibility threshold (ΔE > 3.7). Both groups showed similar ΔE (TAP: 18.3 ± 11.5; HC+CHX: 14 ± 11.2) at the end of the treatment. The average number of sessions needed to achieve satisfactory results was 1.7 ± 0.6 for HC+CHX group and 2.3 ± 0.5 for TAP group. Conclusion: Internal bleaching with sodium perborate associated with distilled water is effective in treating discolored teeth after regenerative endodontic procedures. Keywords: Tooth bleaching. Regenerative endodontics. Tooth discoloration. https://orcid.org/0000-0002-5073-1149 https://orcid.org/0000-0001-8872-2865 https://orcid.org/0000-0002-0300-5697 https://orcid.org/0000-0002-8449-0646 https://orcid.org/0000-0002-5874-9247 https://orcid.org/0000-0002-8078-1606 2 Lazzari et al. Introduction Traumatic injuries in young patients are the major cause of pulp necrosis in imma- ture permanent teeth1. The regenerative endodontic procedure (REP) is a technique based on principles of tissue engineering aimed at providing longitudinal develop- ment and strengthening of root walls with use of the inherent capacity of cell pro- liferation to fill gaps in the body2. Ever since the first clinical report of the regen- erative endodontic procedure3, several protocols have been proposed to promote bacterial decontamination1,4-6 and cervical sealing7, thus increasing the chances of clinical success. However, dental crown discoloration is a recurrent after-effect in regenerated teeth7-9. The main cause of this discoloration has been attributed to the use of the triple antibiotic pastes (TAP) used as intra-canal medication8,10,11. A clinical trial by Nagata et al.8 (2014) observed that 83% of the teeth subjected to this medication protocol had some degree of coronary discoloration. Although this intracanal med- ication has a great antibacterial spectrum, it is hypothesized that the minocycline (a component of TAP) is the responsible for this discoloration, since this substance has the property of binding calcium ions, forming an insoluble complex, which when incorporated into the dentin matrix, leads to darkening2. Another factor related to coronary discoloration following REP is the use of calcium silicate–based cervical barriers1,7,9,10,12-15 and their interaction with the blood clot16, especially those that have bismuth oxide in their composition, which when in contact with collagen matrix result in a darkened precipitate13. Internal bleaching is a consolidated option for the resolution of cases of coronary discoloration in non-vital teeth, even in cases related to traumatic injuries17,18. Recent in vitro studies have shown satisfactory results regarding the efficacy of internal bleaching in darkened teeth after the use of triple antibiotic paste or after the use of calcium silicate–based cervical barriers10,19. However, few in vivo studies regarding internal bleaching of teeth treated by regenerative endodontic procedures have been found in the literature20-23, mostly case reports. Thus, the aim of this study was to describe a series of cases concerning internal teeth whitening in traumatized teeth that underwent regenerative endodontic procedures. We tested the null hypothesis that the internal bleaching with sodium perborate will not be effective in treating darkened teeth after regenerative endodontic procedures. Materials and Methods Protocol and Ethical Criteria All national (CNS/MS Resolution No. 466/2012) and international (Helsinki Decla- ration) precepts related to research ethics involving human beings were respected. The project was approved by an Independent Human Research Ethics Commit- tee (Protocol number: 092/2015). All patients and respective guardians signed a consent form. 3 Lazzari et al. Study design and participants selection This is a case series study in which maxillary anterior teeth discolored after regen- erative endodontic procedures were selected during the follow up of a previous study8 at the Dental Trauma Service of the School of Dentistry of Piracicaba, Brazil. All teeth submitted to REP in the previous study8 were diagnosed with pulp necro- sis based on clinical (negative response to thermal and electric tests / presence of sinus tract or tenderness to percussion) and radiographic aspects (presence of periapical radiolucency). The following inclusion criteria were defined: 1) Success of the regenerative end- odontic procedure. Success was defined as the tooth remaining present in the arch and absence of clinical symptoms (tenderness to palpation or percussion, sinus tract and spontaneous pain); 2) Absence of periapical lesion; 3) Absence of gingival inflam- mation; 4) Absence of external cervical root resorption; 5) Full or minimally restored crown; 6) Absence of orthodontic appliance. Patients who had discolored teeth but did not return to start treatment or refused to participate were excluded from the sample. Division of groups Dental elements were divided into two groups, according to the medication protocol used in regenerative endodontic procedures: • TAP Group: Group with teeth discolored after regenerative endodontic procedure, treated with triple antibiotic paste (ciprofloxacin 250 mg, metronidazole 400 mg and minocycline 50 mg, 1:1:1) and sealed with white MTA (Angelus™, Londrina, Brazil), coltosol (Coltene-Whaledent, Langenau, Germany) and composite resin (Z250 Filtek; 3M ESPE, Sumaré, São Paulo, Brazil). • HC+CHX group: Group with teeth discolored after regenerative endodontic pro- cedure, treated with calcium hydroxide (Biodynamics, Ibiporã, PR, Brazil) and 2% chlorhexidine gel (Endogel, Itapetininga, São Paulo, Brazil), at a 1:1 ratio. Ac- cess cavities were sealed with white MTA (Angelus™, Londrina, Brazil), coltosol (Coltene-Whaledent, Langenau, Germany) and composite resin (Z250 Filtek; 3M ESPE, Sumaré, São Paulo, Brazil). Clinical protocol of internal tooth bleaching The bleaching technique used was walking bleach, where sodium perborate asso- ciated with distilled water was used. At initial consultation, a digital periapical radio- graphic scan (Apixia PSP Scanner, CA, USA) was performed in the region of the tooth to be bleached, followed by dental prophylaxis. The color assessment was performed with the VITA Easyshade digital spectropho- tometer (Vita Easyshade, Vita Zahnfabrik). Photographic records were also performed at the beginning and end of bleaching (NikonTM D3200, Minato, Tokyo, Japan). Clinical crown height was recorded with a millimeter-calibrated instrument and a rubber stop. Rubber-dam isolation and removal of all restorative material was subsequently performed with a high-speed spherical diamond tip pulp chamber 4 Lazzari et al. (KG Sorensen, Barueri, SP, Brazil) under refrigeration (Figure 1A). The MTA, used as cervical barrier, was removed 2 mm below the gingival margin and a new coltosol cervical sealing (Coltene AG, Altstatten, Switzerland) was performed (Figure 1B). The bleaching agent was manipulated in a 2:1 ratio using two measurements of the bleaching agent (sodium perborate) for a vehicle portion (distilled water) [24,25] (Figure 1C). A polymerized cotton ball moistened with dentin adhesive was inserted and the cavity was provisionally sealed with composite resin (Figure 1D). Occlusal adjustment was performed every restoration change. The bleaching agent changes were performed every seven days until the discolored tooth was slightly lighter than the adjacent tooth, with a limit of five sessions of inter- nal tooth bleaching. After the bleaching sessions, the pulp chamber was washed with water spray and a calcium hydroxide paste (Biodynamics, Ibiporã, PR, Brazil) as well as distilled water were applied. After 14 days, sealing was removed, and permanent restoration was performed with composite resin. Color assessment method The color was recorded in two moments: (T1) The baseline was assessed prior the first session of bleaching (in the moment that the discoloration was diagnosed during the follow up visits after the REP); (T2) the second assessment was done fourteen Figure 1. Clinical protocol of internal bleaching. (A) Rubber-dam isolation and removal of all restorative material; (B) Removal of the MTA and insertion of 2mm of Coltosol as a cervical barrier; (C) Insertion of the bleaching agent; (D) Temporary restoration with composite resin. A B C D 5 Lazzari et al. days after the last session of bleaching. The color was recorded in triplicate with the aid of the previously calibrated Vita Easyshade Advance 4.0 digital spectrophotome- ter (Vita Zahnfabrik, Bad Sackingen, Germany). A condensation silicone tray was fab- ricated (Clonage, Nova DFL, RJ, Brazil) with an opening in the cervical region belong- ing to the buccal surface of the darkened tooth in order to eliminate the influence of external illumination and standardize readings. The color of each dental element was assessed using the CIELAB system (Commis- sion Internationale de L’Eclairage, Vienna, Austria). L* a* and b* values were recorded: L* refers to lightness, from 0 (black) to 100 (white); a* values determine the amount of red (positive values) or green (negative values); b* values refer to the measurement of yellow (positive values) or blue (negative values). Comparison between the values obtained from L*, a* and b* are expressed as ΔE, which describes the color difference between the initial and final values of tooth bleaching10. The value of ΔE was obtained by the following formula: ΔE = [(L1-L0) 2 + (a1-a0) 2 + (b1-b0) 2]1/2 Perceptible differences in the human eye were considered, and clinically relevant, ΔE values above 3.724. Data analysis Descriptive analysis of groups with data on age, darkening time, and number of ses- sions. ΔE were calculated and reported as mean, standard deviation and median. Results Of the 23 upper incisors subjected to regenerative endodontic procedures in the study by Nagata et al.8, thirteen presented coronal discoloration during follow-up, of which only seven teeth were included in the sample (Figure 2). The average age of participants was 12.7 (±4.1) years. The time from REP to internal bleaching proce- dure varied from 1 to 4 years (Table 1). All teeth included in the study were maxillary incisors, with the central incisors rep- resenting 73% of the sample, whereas lateral incisors represented 27%. The fre- quency and distribution of teeth according to the type of medication are presented in Table1. 6 Lazzari et al. Table 1. Main characteristics of the cases. Pacient# Tooth Type of TDI Age (years) Darkening time¹ (years) ΔE Number of sessions Group HC + CHX 1 11 Lateral luxation 14 4 12.2 2 2 12 Lateral luxation 8 1 3.8 1 3 11 Extrusion 20 1 26.0 2 Mean ± SD 14 ± 6.0 2 ± 1.7 14 ± 11.2 1.7 ± 0.6 Median 14.0 1.0 12.2 2.0 Group TAP 4 22 Lateral luxation 13 4 33.5 2 1 21 Lateral luxation 14 4 14.1 2 5 21 Extrusion 12 2 19.4 3 2 11 Lateral luxation 8 1 6.2 2 Mean ± SD 11.8 ± 2.6 2.8 ± 1.5 18.3 ± 11.5 2.3 ± 0.5 Median 12.5 3 16.8 2.0 TDI – Traumatic dental injuries; ¹ Darkening time since the regenerative endodontic procedure. Figure 2. Flowchart of the distribution of the teeth included in the study. 23 teeth undergoing REP 13 teeth with crown discoloration Not included teeth (n=6) • Patients did not return for internal bleaching (n=5). • Tooth with extensive restoration (n=1). 7 teeth were included Location Follow-up Analysis TAP group (n=4): • Regenerative endodontic procedure with TAP Lost follow-up (n=0): • Discontinued intervention (n=0) Patients analyzed (n=4) • Excluded from analysis (n=0) HC + CHX group (n=3): • Regenerative endodontic procedure with HC + CHX Lost follow-up (n=0): • Discontinued intervention (n=0) Patients analyzed (n=3): • Excluded from analysis (n=0) 7 Lazzari et al. Change in color analysis In both groups, the color difference between the initial and final values of tooth bleaching were greater than the minimum value (ΔE> 3.7) in all teeth, with values ranging from 3.8 to 33.5. Figure 3 shows before and after internal bleaching of all cases included in the study. The number of sessions required to achieve satisfactory results was similar between groups, ranging from one to three sessions (Table 1). Figure 3. Clinical appearance of the cases included in the study. (A,C,E,G,I) Clinical appearance before internal bleaching, where it is possible to observe the crown discoloration of the incisors submitted to the regenerative endodontic procedure; (B,D,F,H,J) Clinical appearance 14 days after the last internal bleaching session. 8 Lazzari et al. Discussion This study described a series of cases in which non-vital traumatized permanent teeth treated by different medication protocols during the regenerative endodontic procedure underwent internal tooth bleaching procedure. Internal dental bleaching with sodium perborate showed to be an effective treatment modality for discolored teeth following pulp regenerative endodontic procedures. Thus, the null hypothesis was rejected. The REP is an effective therapy for the treatment of necrotic immature teeth, which combines decontamination techniques to eliminate microorganisms from the interior of the root canal and tissue stimulation techniques that will promote the continuation of root development25. Despite its clinical success1,8, the bond strength of restorative materials is influenced by the biomaterials used as a cervical barrier26-27, which can compromise the post-treatment sealing; in addition, some teeth show crown discol- oration during the follow-up, often caused by intracanal medications and materials used in the procedure7-12,19. The most used substances in the internal tooth bleaching technique are hydrogen peroxide and sodium perborate28. The use of sodium perborate associated with dis- tilled water is indicated to reduce the risk of external root resorption, as this combi- nation is less toxic to periodontal ligament cells29. In addition, there are no reports of external root resorption related to its use18. For this reason, we chose to use sodium perborate associated with distilled water, considering the biological aspects and the risk of damage to periodontal tissues, especially in immature teeth with large dentinal tubules and a history of trauma. The efficacy of internal bleaching already been proven in several in vitro and in vivo studies that included factors related to REP as etiologies of tooth discoloration, such as the use of MTA as a cervical barrier30-31, the use of triple antibiotic pastes10,19, or the presence of the blood clot16. The most described MTA-related darkening mechanisms are heavy metal ion release and interaction of bismuth oxide with the collagen matrix, which will result in a dark- ened precipitate30; interaction with the stimulated blood clot during the regenera- tive endodontic procedure31. However, studies have shown that internal bleaching is effective in reversing darkening caused by MTA10,31, as was observed in our study, where all cases showed clinically relevant change in color noticeable to the human eye (ΔE>3.7). Previous study observed that most of the discoloration in these cases are within the MTA and not in the dentin, so the removal of part of the MTA could improve the crown color in association with the internal bleaching32. Another cause related to dental discoloration after REP is the use of triple antibiotic pastes8-11. In our study, of the thirteen discolored teeth present in the initial sam- ple, nine had been treated with triple antibiotic paste (TAP), whereas only four teeth treated with calcium hydroxide and chlorhexidine had darkened. The main reason for this finding is attributed to the presence of minocycline in the constitution of TAP. The most accepted hypotheses that explain these findings are the possible interac- tion of minocycline with collagen, resulting in pigmented bioproducts, and the binding of minocycline to the calcium ion of dentin by chelation6. Thus, the use of calcium 9 Lazzari et al. hydroxide associated with chlorhexidine 2% gel reduces the chances of coronary darkening after regenerative endodontic procedures1 and may be an alternative to the use of TAP paste4,8. As for the results of internal bleaching, regardless of the intracanal medication uti- lized, all teeth showed significant ΔE changes, validating the results of in vitro and in vivo studies and other case reports that showed satisfactory results for internal bleaching of darkened teeth after TAP usage10,19,22,23. It is important to notice that a recent evidence showed that although the internal bleaching of discolored tooth by TAP cause higher color changes in the dentin, the enamel plays an important role in the final color perception19. In this context, during the REP we need to pay attention in the materials used and its impact on both enamel and dentin and establish protocols to avoid tooth discoloration33. The use of blood clots as scaffold during regenerative endodontic therapy has also been associated to coronary darkening31. In all teeth used in this study, blood clots were used as scaffold during REP. There is no consensus in the literature able to explain the darkening mechanism of the tooth discoloration caused by blood clot; however, the most accepted hypotheses are the accumulation of hemoglobin and hematin molecules31,33 or their interaction with materials based on calcium silicate, which would result in the darkening of the material16. We believe that in the cases of this study, a combination of both factors may influence coronary darkening, since MTA barriers are positioned close to the cervical third of the teeth and in direct con- tact with the blood clot. However, further studies should be conducted to verify the relationship of coronary discoloration with the presence of blood clots, as well as the efficacy of bleaching agents in such situations. This study has certain limitations. The first concerns the small number of patients involved in each group. In addition, study design represents an important limitation since case series studies have low scientific evidence. Randomized clinical trials are encouraged to reinforce the findings. However, this is an original study, being the larg- est case series of traumatized teeth undergoing regenerative endodontic procedures and internal bleaching. 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